200 0 1 1 1 2 0 0 Log Agriculture - mega case study ktluser 27. Aprta 2009 23:21 ktluser 28. Aprta 2009 19:07 48,24 1,11,6,768,451,17 2,0,-23,960,188 Arial, 15 0,Model Agriculture___mega_c,2,2,0,1,C:\temp\Agriculture - mega case study.ANA Biofuels ['BAU','20 % of traffic fuels'] 64,208,1 48,24 2,102,90,476,224 ['BAU','20 % of traffic fuels'] Total agriculature land 1000 ha From the presentation in the mega case study meeting 27 April, 2009, Kjeller. Table(Country)( 1386,2729,3558,2708,17.035K,829,4219,3984,24.855K,27.591K,12.708K,152,1702,2792,129,4267,10,1958,3266,14.755K,3680,13.907K,485,1879,2264,3192,15.957K) 64,120,1 48,31 2,83,16,416,303,0,MIDM [0,1,0,1] Country ['BE','BG','CZ','DK','DE','EE','IE','EL','ES','FR','IT','CY','LV','LT','LU','HU','MT','NL','AT','PL','PT','RO','SI','SK','FI','SE','UK'] 64,160,1 48,12 ['BE','BG','CZ','DK','DE','EE','IE','EL','ES','FR','IT','CY','LV','LT','LU','HU','MT','NL','AT','PL','PT','RO','SI','SK','FI','SE','UK'] Pesticide regulation ['BAU','Strict regulation'] 72,48,1 48,24 Pesticide use kg/a var a:= array(Pesticide_regulation, [uniform(1,50), uniform(0.5,25)]); a*Total_agriculature_l 320,48,1 48,24 2,88,98,416,506,0,MIDM [Pesticide_regulation,Country] [1,0,0,0] Pesticide inhalation kg/a var iF:= Lognormal( 0.0001, 5 ); var personal_protection:= beta(100,1000); pesticide_use*iF*personal_protection 432,48,1 48,24 2,269,74,476,224 2,72,47,382,576,0,MIDM [Pesticide_regulation,Country,1] [1,0,0,0] [Country,25,Pesticide_regulation,1] Cancer due to pesticides var a:= Pesticide_inhalation*1M/365/70*Erf_of_pesticides; var totalca:= Population*1M*0.01*0.2*0.1; min([a,totalca]) 560,48,1 48,31 2,61,24,600,415,1,PDFP [Pesticide_regulation,Pesticide_regulation,Undefined,Undefined,1] [Index Country] [0,0,0,0] [Country,0,Pesticide_regulation,2,Sys_localindex('STEP'),1] Irrigation practices ['BAU','Efficient'] 216,120,1 48,24 Meat consumption ['BAU','Low'] 64,264,1 52,24 [1,1,1,0] Animal numbers M# Calculates the animal number based on the assumption of the daily consumption of meat (g/d), the amount of meat per animal (kg), and the average lifetime of an animal (a). The total meat consumption and total meat production are assumed equal. var portion:= array(animal, [uniform(0.05, 0.1), uniform(0.05,0.1), uniform(0.02,0.05), uniform(0.02,0.04)]); portion:= if Meat_consumption='Low' then portion*uniform(0.6,1) else portion; var animal_size:= array(animal, [uniform(150,300), uniform(80,150), uniform(0.5, 1.5), uniform(20, 60)]); var lifetime:= array(animal, [uniform(3,5), uniform(0.5,1),uniform(0.2,0.4), uniform(1,3)]); population*portion*365/(animal_size/lifetime) 184,320,1 48,24 2,102,90,476,282 2,40,15,416,303,0,MIDM [Meat_consumption,Country] [Index Country] [1,0,0,0] Population M# Table(Country)( 5,7,6,4,80,1,5,6,50,60,47,1,2,2,0.5,7,0.2,15,6,60,20,15,4,5,5,8,60) 64,320,1 48,24 1,1,0,1,1,1,0,,0, 2,70,33,416,229,0,MIDM 2,40,15,416,303,0,MIDM [Index Country] [0,0,0,0] Animal ['Beef','Pork','Poultry','Sheep'] 184,352,1 48,12 Cultivation activities Irrigation_practices*Total_agriculature_l 216,200,1 48,24 Farming practices Biofuels; Total_agriculature_l 216,264,1 48,24 [1,1,0,1] Livestock wastes ton/a Very rough estimates for different animals based on human excretion estimates scaled by the weight. var urine:= array(animal,[uniform(10,30), uniform(2,6), 0, uniform(1,3)]); var manure:= array(animal, [uniform(5,15), uniform(1,3), uniform(0.05, 0.15), uniform(0.5,1)]); Animal_numbers*1M*array(waste,[urine,manure])*365/1000 312,320,1 48,24 2,102,90,498,303 [Animal,Country] [Index Country] [1,0,0,0] [Waste,2,Meat_consumption,2,Country,1,Animal,1] Gaseous emissions ton/a Farming_practices; sum(sum(Livestock_wastes*Emission_factors,animal),waste)/1000 432,320,1 48,24 [Pollutant,Country] [Index Country] [1,0,0,0] [Meat_consumption,1,Country,1,Pollutant,1] Pollutant ['CO2','CH4','NH3','CFC'] 432,352,1 48,12 ['CO2','CH4','NH3','CFC'] Waste ['Urine','Manure'] 312,352,1 48,12 ['Urine','Manure'] ERF of pesticides 1 per (mg/kg/d) Dieldrin used as an example. http://www.epa.gov/NCEA/iris/subst/0225.htm Cancer slope factor CSF 16 per (mg/kg/d) array(pesticide,[lognormal (16,10)]) 432,104,1 48,24 [0,0,0,0] Pesticide ['Dieldrin'] 432,136,1 48,12 Emission factors g/kg A guesstimate about the gaseous emissions per kg of animal waste. Table(Pollutant,Waste)( 0,0, 0,10, 1,0, 0,0 ) 432,256,1 48,24 2,376,40,416,303,0,MIDM [Waste,Pollutant] [Waste,Pollutant] Waste leaching and runoff ton/a A guesstimate about how much of the manure is actually leached to water. sum(Livestock_wastes[waste='Manure']*lognormal(0.03,5),animal) 560,376,1 48,31 2,658,132,416,303,0,MIDM [Meat_consumption,Country] [Index Country] [1,0,0,0] Zoonooses conc in water cfu/l A guesstimate could not be produced for this variable. This is so dependent on the dilution of manure in the water, and the concentration of pathogens in the cattle. The variation is for sure more than a million fold. Actual measurements are needed for this. Waste_leaching_and_r; lognormal(100,20) 560,264,1 48,31 2,56,66,416,303,0,STAT [Meat_consumption,Country] Gastric infections # cases/a This is very uncertain. Basically, we assume that there are 0.1 cases of gastric infections per person per year. There is 0.5 probability that these cases are directly proportional to zoonooses in water, otherwise there is no causal connection. var a:= bernoulli(0.5); a:= a*Zoonooses_conc_in_wa+ (1-a)*mid(Zoonooses_conc_in_wa); a*0.001*Population*1M 672,264,1 48,24 Fertilizer use The first guesstimate is that nitrate fertilisers are used 10-100 kg per hectare per year. Farming_practices-Gaseous_emissions; if country=0 then uniform(10,100) else uniform(10,100) 320,192,1 48,24 [0,0,0,0] Nitrate leaching and runoff g/l It is assumed that 200 mm of rain turns into groundwater per year. The leached nitrate dissolves in this water volume. Fertilizer_use*uniform(0.01,0.2)/lognormal(.2*100*100,5) 432,192,1 48,31 2,791,171,416,303,0,MIDM [0,0,0,0] Nitrate conc in water g/l Nitrate is evaporated and removed in the treatment, so that only a part remains at tap. Nitrate_leaching_and*uniform(0,0.5) 560,192,1 48,24 Neurodevelopmental effect # cases/a The first assumption is that neurodevelopmental effects are as common as infant methemoglobinemia. Further, it is assumed that the birth rate is 1% of the total population per year. (exp(Nitrate_conc_in_wate*erf_of_nitrate)-1)*Population*1M*0.01 672,193,1 48,31 ERF of nitrate <a href="http://en.opasnet.org/w/Exposure_response_function_for_nitrate_and_iMetHb">Wiki description</a> Nitrate toxicity value for infants U.S. EPA has evaluated the noncancer oral data for nitrate and derived a reference dose (RfD) of 1.6 mg/kg-day with 10 % of risk to MetHb. 0.065850 560,136,1 48,24 Opasnet base connection Interface for uploading data to and downloading from the Opasnet Base. <a href="http://en.opasnet.org/w/Image:Opasnet_base_connection.ANA">Wiki description</a> Jouni Tuomisto 9. maata 2008 10:42 ktluser 23. Aprta 2009 23:49 48,24 136,424,0 48,32 1,0,0,1,1,1,0,0,0,0 1,26,12,586,607,17 2,102,90,476,224 Arial, 15 100,1,1,1,1,9,2970,2100,15,0 This module saves model results into the Opasnet Base. You need your Opasnet username and password for that. You must fill in all tables before the process is completed. Fill in the data below from top to bottom. If an object with the same Ident already exists in the Opasnet Base, the information will be added to that object. Before you start, make sure that you have created an object page in the Opasnet wiki for each object (study or variable) you want to upload. 276,76,-1 268,68 Username 0 272,156,1 160,12 1,0,0,1,0,0,0,142,0,1 52425,39321,65535 Opasnet_username Password 0 272,180,1 160,12 1,0,0,1,0,0,0,142,0,1 52425,39321,65535 Opasnet_password Number of indices 0 272,380,1 152,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 N_indices Number of observations 0 272,428,1 152,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 N_observations Observations 0 272,452,1 152,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 Observations Study or variable info 0 276,524,1 156,12 1,0,0,1,0,0,0,90,0,1 52425,39321,65535 Object_info1 Upload a data table. Indices are determinants of your study objects, such as sex or observation year. Parameters are those that are measured, such as body weight or pollutant concentration. 272,356,-1 160,116 1,0,0,1,0,1,0,,0, 2,693,146,476,224 # of observed parameters 0 272,404,1 152,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 N_parameters (Advanced users of Analytica Enterprise may upload whole models. For this option, see below.) 276,220,-1 268,20 Finally, fill in the name (a description that may be longer than an identifier) and the unit of measurement. Then press the button Upload data. 276,492,-1 268,20 Study Ident 0 272,357,1 152,13 1,0,0,1,0,0,0,158,0,1 52425,39321,65535 Study_ident Upload a model ktluser 1. Aprta 2009 9:38 48,24 152,760,1 48,24 1,1,0,1,1,1,0,,0, 1,883,39,373,406,17 Additional parts This module contains nodes that have been developed for a particular detail, like managing the Sett and Item tables. However, these tasks are not very important for the basic functionalitites, so we leave the development of them later. You must come back to these when there is more time. ktluser 22. Marta 2009 22:43 48,24 296,424,1 48,24 1,1,0,1,1,1,0,,0, 1,679,19,567,227,17 Indices This makes a list of all indices (including decision nodes) that are used by the variables in Object1. 0{index a:= indexnames(evaluate(Objects_excl_indices)); a:= if a='Object1' or a='Objects_excl_indices' then 0 else 1; subset(a)} 232,168,1 48,13 2,102,90,476,464 2,32,349,416,303,0,MIDM [Objects_excl_indices] ['Age','Country','Year','Sex'] W Sett Makes a list of sets for the Sett table. There are three major kinds of sets: Indices belonging to an assessment, variables belonging to an assessment, and variables belonging to a run. Indices belonging to a dimension are NOT created with this node. index i:= ['Assessment','Assessment','Run']; index j:= ['id','Obj_id','Sty_id']; array(j,[ (Cardinals[table1='Sett']+@i)&'', findid(Objects1[Object_all=i, .j='Ident'], Obj, 'Ident'), array(i,[3,4,9])]) 200,24,1 48,16 2,740,132,495,444 2,661,16,416,340,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 [Index Table1, Variable Cardinals, Function Findid, Variable Obj] 100,1,1,1,1,9,2970,2100,15,0 [] W Item Makes a list of items of sets into the Item table. This node does NOT handle indices of a dimensions, but they must be described elsewhere. For types of sets, see Write_sett. index j:= ['id','Sett_id','Obj_id','Fail']; index k:= types(1); index L:= types(6); var c:= if sett.j='Obj_id' then sett&'+'&sett[.j='Sty_id'] else sett; c:= findid(W_sett[.j='Obj_id']&'+'&W_sett[.j='Sty_id'], c, 'Obj_id'); var a:= array(j,k, [0, slice(c,1), k, 0]); var b:= array(j,L,[0, slice(c,2), L, 0]); index m:= 1..(size(k)+size(L)); a:= concat(a,b,k,l,m); b:= array(j,k, [0, slice(c,3), k, 0]); index i:= 1..(size(m)+size(k)); a:= concat(a,b,m,k,i); if j='id' then cardinals[table1='Item']+@i else a; 200,72,1 48,16 2,80,84,476,473 2,921,13,345,638,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 100,1,1,1,1,9,2970,2100,15,0 [] [Self,1,Sys_localindex('J'),1,Sys_localindex('K'),1] Is the data probabilistic 0 152,120,1 140,13 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 Is_the_data_probabil Objects excl indices ['Morbidity__diseases_'] 368,136,1 48,24 2,958,152,321,481 2,328,338,416,361,0,MIDM 52425,39321,65535 ['Morbidity__diseases_'] Is the data probabilistic Choice(Self,1,False) 96,48,1 48,24 [Formnode Is_the_data_probabi1] 52425,39321,65535 ['No','Yes'] Object all List of variables, indices, assessment, and run to be stored into the Opasnet Base. Assessment is not included in the simpler version. concat(['Object'],Indices1)&'' 312,80,1 48,13 1,1,1,1,1,1,0,0,0,0 2,49,109,558,527 2,200,210,688,358,0,MIDM [Self] ['Object','Age','Country','Year','Sex','Morbidity'] Indices observations[@observation=1, @field1=1..size(field1)] 304,48,1 48,12 [0,1,1,0] ['Age','Country','Year','Sex','Morbidity'] Te11 Upload an Analytica model. First, switch the choice "Data table or model?" to Analytica model. Note! You can insert several variables at the same time. Each variable or study MUST have at least one index. Analytica identifiers are used to find the right nodes. Ident is the identifier of the description page from the Opasnet wiki. If Probabilistic? is 1, a sample of the distribution is stored; if it is 0, the mean or the point estimate is stored. 168,230,-5 152,137 1,0,0,1,0,1,0,,0, Dependency graph ktluser 29. Decta 2008 21:51 48,24 64,496,1 48,24 1,13,30,902,527,17 92,1,1,0,2,9,2970,2100,15,0 Cardinals: all tables 0 192,56,1 48,24 39325,65535,39321 Objects: identifier id ident Name Unit Typ_id etc Cardinals__all_table 320,120,1 48,76 Obj: id Ident Name Unit Typ_id etc Objects__ 192,184,1 48,67 65535,45873,39321 Sett: id Obj_id Typ_id Obj__id_ident_name_u 192,328,1 48,40 65535,45873,39321 Item: id Sett_id Obj_id Fail Sett__id_obj_id_typ_ 56,329,1 48,49 65535,45873,39321 Inf: id Begin End Who Url Obj__id_ident_name_u 56,186,1 48,58 65535,45873,39321 Loc: id Obj_id_d Location Description Obj__id_ident_name_u 320,336,1 48,52 65535,45873,39321 Inp_locres: Locres_id Location Res_id Roww_id Vident Obj_id_v Obj_id_r Mean N Loc__id_obj_id_d_loc 456,336,1 48,92 Locres: id Res_id Roww_id Inp_locres__locres_i 592,424,1 48,40 65535,45873,39321 Res: id Obj_id_v Obj_id_r Mean N Inp_locres__locres_i 592,312,1 48,58 65535,45873,39321 Sam: id Res_id Sample Result Sample__id_res_id_sa 592,120,1 48,52 65535,45873,39321 Descr: id Descr Sample__id_res_id_sa 592,216,1 48,31 65535,45873,39321 The arrows only show sequential dependencies. This means that e.g. Cardinals is a parent to many other nodes as well, but the critical values in Cardinals only change before Objects is defined, and there is no need to update Cardinals during the writing process. Orange nodes are actual Tables in Opasnet Base. Green nodes are SQL queries from Opasnet Base. Blue nodes are computed in Analytica. 752,168,-1 112,152 Sample: id Res_id Sample Result Descr Objects__ 456,121,1 48,58 R Objects 192,176,-1 56,80 1,0,0,1,0,1,0,,0, R Structure 256,332,-1 120,68 1,0,0,1,0,1,0,,0, R Cardinals 192,48,-1 56,40 1,0,0,1,0,1,0,,0, Writer jtue 24. maata 2009 9:36 48,24 184,424,1 48,24 1,566,38,555,442,17 W Loc Makes a table to be written to the Loc table. index j:= ['id','Obj_id_i','Location','Roww','Description']; var a:= Locations[.j=j]; var b:= a[j='Obj_id_i']; array(j,[textify(cardinals[table1='Loc']+a), findid(b,Obj,'Ident'), a, textify(a), a]) 464,296,1 48,12 2,156,83,476,245 2,642,68,515,278,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 100,1,1,1,1,9,2970,2100,15,0 [] [Sys_localindex('I'),16,Sys_localindex('I'),1,Sys_localindex('J'),1] W Loccell Slices fields that are needed in the Locres table from Inp_locres. index j:= ['id','Cell_id','Loc_id']; var a:= Loccells; var b:= textify(findid(a[.j='Loc_id'], Obj, 'Ident')); var c:= textify(a[.j='Location']); b:= findid(b&'+'&c, (if Loc.j='Obj_id_i' then Loc&'+'&Loc[.j='Location'] else Loc), 'Obj_id_i'); a:= a[.j=j]; a:= array(j,[(a+cardinals[table1='Loccell']),(a+cardinals[table1='Cell']), b]); textify(a) 464,192,1 48,16 2,791,179,476,387 2,632,155,619,303,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 [] W Cell Slices the fields that are needed in the Res table. Removes duplicate rows. WHY IS THIS CODE SO SLOW? There is no apparent reason to that. Is the findid function so time-consuming? index j:= ['id','Obj_id_v','Obj_id_r','Mean','N']; var a:= Loccells; var b:= a[.j='Cell_id']+cardinals[table1='Cell']; a:= a[.j=j]; var c:= findid(a[@j=2], Obj, 'Ident'); var d:= w_obj[.j='Ident']; d:= findid(d, Obj, 'Ident')[@.i=size(w_obj.i)]; a:= array(j, [textify(b),c, d, a, textify(a)]); index i:= unique(a,a.i); a:= a[.i=i]; if a=null then '' else a 464,160,1 48,16 2,782,213,476,379 2,85,231,505,368,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 [] Wikis Names of different wikis used. Table(Self)( 'Op_en','Op_fi','Heande','En','Fi','Erac','Beneris','Intarese','Piltti','Kantiva','Bioher','Heimtsa') [1,2,3,4,5,8,9,10,11,13,14,15] 344,24,1 48,16 65535,52427,65534 [Self] Object types Types of different objects that may exist in Analytica or Opasnet Base. Types that have the same number are treated equally in these systems. Table(Self)( 'Variable','Dimension','Method','Model','Class','Index','Nugget','Encyclopedia article','Run','Chance','Decision','Objective','Constant','Determ','Module','Library','Form') [1,2,3,4,5,6,7,8,9,1,10,1,1,1,4,4,4] 64,328,1 48,20 2,56,132,476,224 2,674,34,416,606,0,MIDM 2,636,151,416,390,0,MIDM 65535,52427,65534 W Obj Selects relevant information for the Obj table from Objects1 node. index j:= ['id','Ident','Name','Unit','Objtype_id','Page','Wiki_id']; var a:= Objects; var b:= if a[.j='Ident'] = 0 then -1 else a[.j='Ident']; b:= findid(b, Obj, 'Ident'); b:= if b='0' then cardinals[table1='Obj']+a[.j='id'] else b; a:= if a.j='id' then b else a; a:= a[.j=j]; a:= if j='Ident' and a[j='Ident']='' then a[j='id'] else a; textify(a) 464,104,1 48,16 2,510,359,476,287 2,14,54,1023,259,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [] [] W Resinfo If the result is not a number, then the actual result text can be written into the Description field of the Descr table. Makes a list of text values to be written into the Descr table. index j:= ['id','Restext']; var a:= Results; index i:= subset(a[.j='Restext']); a:= a[.j=j, .i=i]; a:= array(j, [textify(a+Cardinals[table1='Res']), a]) 464,232,1 48,16 2,674,46,476,259 2,670,328,416,303,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 [] W Objinfo Makes a list of objects that contains some additional information to be written into the Inf table. index j:= ['Obj_id','Acttype_id','Who','Comments']; var a:= Objects; var b:= if a[.j='Ident'] = 0 then -1 else a[.j='Ident']; b:= findid(b, Obj, 'Ident'); b:= if b='0' then cardinals[table1='Obj']+a[.j='id'] else b; a:= if j='Obj_id' then b else a[.j=j]; a:= if a = null or a='' then 0 else a; index i:= subset(if sum(a, j) = 0 then 0 else 1); a:= a[.i=i]; a:= if a=null or a=0 then '' else a&'' 464,72,1 48,16 2,773,40,476,340 2,34,427,690,274,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [] [Sys_localindex('J'),1,Sys_localindex('I'),1,Sys_localindex('J'),1] W Res index j:= ['id','Cell_id','Obs','Result']; var a:= Results; index i:= subset(if a[.j='Result']=null and a[.j='Description']=0 then 0 else 1); a:= a[.j=j, .i=i]; a:= array(j, [textify(a+Cardinals[table1='Res']), textify(a+ Cardinals[table1='Cell']), textify(a),a]); if a=null then '' else a 464,264,1 48,13 2,539,477,582,297 2,62,129,609,303,0,MIDM 65535,45873,39321 [Sys_localindex('J'),Sys_localindex('I')] 2,D,4,2,0,0,4,0,$,0,"ABBREV",0 [] [] Number of variables Additional information for each index and decision node. Description node is the name of a node containing information about the locations of the index. It must be indexed by the index. 12 192,328,1 48,22 2,140,217,476,224 2,605,351,664,303,0,MIDM 2,506,220,684,303,0,MIDM [Formnode Number_of_variables1] 52425,39321,65535 [Indices] [Indices] [1,1,0,1] Variable var a:= if data_table_or_model_ = 'Data table' then 1 else N_variables; 'Var'&1..a 192,264,1 48,13 1,1,1,1,1,1,0,,0, 2,107,331,416,303,0,MIDM ['Var1','Var2','Var3','Var4','Var5','Var6','Var7','Var8','Var9','Var10','Var11','Var12'] Variables Additional information for each index and decision node. Description node is the name of a node containing information about the locations of the index. It must be indexed by the index. Table(Variable1,Varinfo)( 'neurodevelopmental_effect','Op_en3010',1, 'cancer_due_to_pestic','Op_en3011',1, 'gastric_infections','Op_en3012',1, 'population','Op_en3017',0, 'animal_numbers','Op_en3018',1, 'fertilizer_use','Op_en3019',1, 'pesticide_use','Op_en3020',1, 'pesticide_inhalation','Op_en3021',1, 'erf_of_pesticides','Op_en3022',1, 'livestock_wastes','Op_en3023',1, 'nitrate_leaching_and','Op_en3024',1, 'waste_leaching_and_r','Op_en3025',1 ) 192,232,1 48,22 2,140,217,476,224 2,11,16,404,630,0,MIDM 2,506,220,684,303,0,MIDM [Formnode Variables1] 52425,39321,65535 [Varinfo,Variable1] [Varinfo,Variable1] [0,1,1,0] Field var a:= 'index'&1..N_indices; {a:= if Is_the_data_probabil='Yes' then concat(a,['Iteration']) else a;} var b:= 'parameter'&1..N_parameters; concat(a, b) 64,184,1 48,12 2,683,44,416,303,0,MIDM [1,1,1,0] ['index1','parameter1'] Observation concat(['Identifier'],'Obs'&1..N_observations) 64,208,1 48,12 2,557,134,416,303,0,MIDM ['Identifier','Obs1','Obs2','Obs3','Obs4','Obs5','Obs6','Obs7','Obs8','Obs9','Obs10','Obs11','Obs12','Obs13','Obs14','Obs15','Obs16','Obs17','Obs18','Obs19','Obs20','Obs21','Obs22','Obs23','Obs24'] Number of indices 1 64,64,1 48,24 [Formnode Number_of_indices1] 52425,39321,65535 [1,1,0,1] Number of observations 24 64,112,1 52,24 [Formnode Number_of_observati1] 52425,39321,65535 Observations Table(Field1,Observation)( 'Hour',0,1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23, 'Fraction',9.056669999999999m,5.85167m,4.245m,4.80833m,3.24833m,7.26m,0.02535,0.07911667,0.0853,0.0351,0.03153333,0.02771667,0.03276667,0.03183333,0.04346667,0.05795,0.10268333,0.09278333,0.06351667,0.04721667,0.03596667,0.0209,0.01215833,9.61333m ) 64,160,1 52,16 2,746,25,497,657,0,MIDM 2,644,62,513,572,0,MIDM [Formnode Observations1] 52425,39321,65535 [Field1,Observation] [Field1,Observation] Object info Table(Object_info,Object1)( 'Neurodevelopmental effect of nitrate','Cancer due to pesticides in Europe','Gastric infections in Europe','Population in Europe','Number of farm animals in Europe','Fertilizer use in Europe','Pesticide use in Europe','Pesticide exposure in Europe','ERF of pesticides on cancer','Livestock wastes in Europe','Nitrate leaching and run-off in Europe','Livestock waste leaching and run-off in Europe','Country','Pesticide regulation in Europe','Meat consumption in Europe','Farm animal species','Livestock waste type', '# cases/a','# cases/a','# cases/a','#','#','ton/a','kg/a','mg/kg/a','1 per (mg/kg/d)','ton/a','ton/a','ton/a','-','-','-','-','-' ) 192,72,1 48,13 2,102,90,476,349 2,183,67,659,478,0,MIDM 2,184,194,660,316,0,MIDM [Formnode Study_or_variable_i1] 52425,39321,65535 [Object_info,Object1] [Object_info,Object1] Object info ['Name','Unit'] 192,96,1 48,12 ['Name','Unit'] Loccells Makes a list of all locations in all results in all variables. The list is as long as is needed for the Loccell table. A subset is taken then for the Cell table. 1) Initialises local variables, and slices variables from Object1. 2)-4) Does the process for each variable one at a time. This happens in function Loccell. 5) Makes i the row index. , @observation=@cell_id+1 var output:= 0; output:= if data_table_or_model_ = 'Data table' then Doloccell(Data_table) else ( var e:= 0; var f:= 0; var x:= 1; while x<= size(variable1) do ( var a:= mean(evaluate(variables[@variable1=x, varinfo='Analytica identifier'])); index j:= concat(indexnames(a),['Result']); index i:= 1..size(a); a:= mdarraytotable(a, i, j); a:= Doloccell(a, x, e, f); e:= e+size(a.i); f:= f+size(i); output:= if x=1 then a else for y:= output.j do ( concat(output[.j=y], a[.j=y]) ); x:= x+1) ; output); index i:= 1..size(output)/size(output.j); for y:= output.j do (slice(output[.j=y],i)) 344,160,1 48,16 2,729,93,526,558 2,355,101,656,488,0,MIDM [Sys_localindex('J'),Sys_localindex('I')] 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [] [Undefined] [Sys_localindex('CONV2'),1,Parameter,1,Sys_localindex('L'),1] Results The usage of local variables: a: the temporary variable that is being edited. e: cardinal of the Cell table. f: cardinal of the Res table. j: output column headings. i: output row numbers. NOTE! ONLY THE DETERMINISTIC VERSION WORKS AT THE MOMENT. 1) Only one piece of information (Observations) is included. 2)-5) The process is done for each variable one at a time (this is indexed by x). 3) Several within-loop local variables are initiated. 4) The variable is given index runn which is equal to run if probabilistic and [0] if not. The array is flattened first to 2-D, the value only is kept. 5) Variables are concatenated to each other. 6) Index i is made the index of the implicit index. NOTE! This node MUST be formatted to Integer, otherwise Res_id will be stored in a wrong format. var output:= 0; output:= if data_table_or_model_ = 'Data table' then Doresult(Data_table, 0) else ( var e:= 0; var f:= 0; var x:= 1; while x<= size(variable1) do ( var a:= sample(evaluate(variables[@variable1=x, varinfo='Analytica identifier'])); index j:= concat(indexnames(max(a,run)),['Result']); index i:= 1..size(max(a,run)); a:= mdarraytotable(a, i, j); a:= Doresult(a, variables[@variable1=x, varinfo='Probabilistic?'], e, f); e:= max(a[.j='Cell_id'],a.i); f:= max(a[.j='id'],a.i); output:= if x=1 then a else for y:= output.j do ( concat(output[.j=y], a[.j=y]) ); x:= x+1) ; output); index i:= 1..size(output)/size(output.j); output:= for y:= output.j do (slice(output[.j=y],i)) 344,232,1 48,16 2,50,25,585,615 2,583,137,469,411,0,MIDM [Sys_localindex('J'),Sys_localindex('I')] 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [Run,2,Sys_localindex('J'),1,Sys_localindex('I'),1] Locations The format of this node MUST be integer, so that the id and Roww values are stored correctly. var output:= 0; output:= if data_table_or_model_ = 'Data table' then Dolocation(Data_table) else ( var x:= 1; while x<= size(variable1) do ( var a:= mean(evaluate(variables[@variable1=x, varinfo='Analytica identifier'])); index j:= concat(indexnames(a),['Result']); index i:= 1..size(a); a:= mdarraytotable(a, i, j); a:= Dolocation(a); output:= if x=1 then a else for y:= output.j do ( concat(output[.j=y], a[.j=y]) ); x:= x+1) ; output); index i:= 1..size(output)/size(output.j); output:= for y:= output.j do (slice(output[.j=y],i)); if output.j='id' then i else output 344,296,1 48,16 2,650,38,476,581 2,745,15,483,348,0,MIDM [Sys_localindex('J'),Sys_localindex('I')] 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [0] [Sys_localindex('D'),1,Object_all3,1,Age,1] # of observed parameters 1 64,264,1 48,31 [Formnode A__of_observed_para1] 52425,39321,65535 Parameter Observations[@Observation=1, @Field1=N_indices+(1..N_parameters)] 192,184,1 48,12 2,746,363,416,303,0,MIDM ['Fish','Samplesize','Minsize','Maxsize','137Cs_Bq/kgtpVammala','137Cs_Bq/kgtpSTUK'] Data table index h:= observations[@observation=1, @field1=1..N_indices]; index j:= concat(h,['Parameter','Result']); index i:= 1..(size(observation)-1)*size(parameter); index loccell_id:= 1..(size(i)*size(h)); var conv:= if j='Result' then @parameter+N_indices else @j; index conv2:= 1..N_observations; var a:= observations[@field1=conv, @observation=conv2+1]; a:= if j='Parameter' then parameter else a; a:= concatrows(a, parameter, conv2, i); 192,160,1 48,13 2,102,90,482,326 2,654,192,611,318,0,MIDM [Sys_localindex('I'),Sys_localindex('J')] [Parameter,6,Sys_localindex('CONV2'),1,Sys_localindex('L'),1] Varinfo ['Analytica identifier','Ident','Probabilistic?'] 192,288,1 48,12 2,90,166,416,303,0,MIDM ['Analytica identifier','Ident','Probabilistic?'] Objects Index j:= ['id','Ident','Name','Unit','Objtype_id','Acttype_id','Page','Wiki_id', 'Who','Comments','Probabilistic?','Description node']; index i:= concat(Object1,['Run']); var a:= if j='Ident' and i = 'Var1' then study_ident else null; a:= if data_table_or_model_ = 'Data table' then a else Variables[Variable1=i, Varinfo=j]; a:= if a=null then Object_info1[Object1=i, Object_info=j] else a; var b:= findintext(wikis,a[j='Ident']); var c:= sum(if b=0 then 0 else @wikis,wikis); b:= sum(if b=0 then 0 else b+textlength(Wikis),wikis); b:= if b = 0 then 2664 else selecttext(a[j='Ident'],b); a:= array(j,[ @i, if @i>size(variable1) and @i<size(i) then i else a, if i ='Run' then 'Analytica '&Analyticaedition&', ('&Analyticaplatform&'), Version: '&Analyticaversion&', Samplesize: '&samplesize else a, a, if @i<=size(variable1) then 1 else if @i=size(i) then 9 else 6, if @i<=size(variable1) then 11 else 1, if i='Run' then '2817' else b&'', if c=0 then 1&'' else c&'', opasnet_username, '', a, '']); a:= if a = null then '' else a 344,72,1 48,16 2,669,75,479,551 2,106,165,1087,333,0,MIDM [Sys_localindex('I'),Sys_localindex('J')] Object reset; var a:= indexnames(evaluate(Variables[Varinfo='Analytica identifier'])); a:= if a='Variable1' or a='Run' then 0 else 1; a:= subset(a); a:= if data_table_or_model_ = 'Data table' then Observations[@Observation=1, @Field1=1..n_indices] else a; var b:= if data_table_or_model_ = 'Data table' then "['Var1']" else "variable1"; concat(evaluate(b),a) 192,120,1 48,13 2,59,17,502,338 2,718,27,416,303,0,MIDM ['Var1','Var2','Var3','Var4','Var5','Var6','Var7','Var8','Var9','Var10','Var11','Var12','Country','Pesticide_regulation','Meat_consumption','Animal','Waste'] Study Ident 'Op_en2999' 192,32,1 48,16 [Formnode Study_ident1] 52425,39321,65535 [1,1,0,1] Data table or model? Choice(Self,2,False) 64,424,1 48,24 [Formnode Data_table_or_model1] ['Data table','Analytica model'] [1,1,0,0] Data table or model? 0 176,21,1 160,13 1,0,0,1,0,0,0,142,0,1 Data_table_or_model_ Number of variables 0 160,320,1 140,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 N_variables Variables 0 164,345,1 140,12 1,0,0,1,0,0,0,72,0,1 52425,39321,65535 Variables Reader ktluser 3. Augta 2008 18:31 jtue 9. lokta 2008 14:01 48,24 296,496,1 48,24 1,1,1,1,1,1,0,0,0,0 1,785,211,477,360,17 Arial, 15 (vident:text, runident:optional) Read mean Reads the mean data about the vident variable from the Opasnet Base. Uses the runident run if specified; otherwise uses the newest run of that variable. PARAMETERS: * Vident: the Ident of the variable in the Opasnet Base. * Runident: the Ident of the run from which the results will be brought. If omitted, the newest result will be brought. if isnotspecified(runident) then runident:= identfind(newestrun(vident)); var a:= ' SELECT Var.Ident as Vident, Var.Name as Vname, Var.Unit as Vunit, Cell.id, Ind.Ident as Iident, Location, Mean, N, Run.Name as Rname, Run.Ident AS Runident FROM Obj as Var, Cell, Loccell, Loc, Obj as Ind, Obj as Run WHERE Cell.Obj_id_r = Run.id AND Cell.Obj_id_v = Var.id AND Loccell.Cell_id = Cell.id AND Loccell.Loc_id = Loc.id AND Loc.Obj_id_i = Ind.id AND Var.Ident = '&chr(39)&vident&chr(39)&' AND Run.ident = '&chr(39)&runident&chr(39) ; index i:= DBquery(Odbc,a); index j:= dblabels(i); dbtable(i,j) 56,88,1 48,12 2,585,25,516,589 39325,65535,39321 vident,runident (vident:text) Newestrun This function checks for the newest result (according to run_id) of the variable. The function is used if the user does not define the run_id as an optional parameter in functions Read_mean and Read_sample. PARAMETERS: * Vident: the Ident of the variable in the Opasnet Base. index i:= DBquery(Odbc,' SELECT Obj_id_r FROM Cell, Obj as Var WHERE Var.id = Cell.Obj_id_v AND Var.Ident = "'&vident&'" GROUP BY Var.id, Obj_id_r '); index j:= dblabels(i); max(max(dbtable(i,j),i),j) 56,16,1 48,12 2,678,59,476,566 39325,65535,39321 vident (vident:text, runident:optional) Read sample Reads the sample data about the vident variable from the Opasnet Base. Uses the runident run if specified; otherwise uses the newest run of that variable. PARAMETERS: * Vident: the name of the variable in the Opasnet Base. * Runident: the Ident of the run from which the results will be brought. If omitted, the newest result will be brought. if isnotspecified(runident) then runident:= identfind(newestrun(vident)); var a:= ' SELECT Temp.id, Obs, Result, Restext FROM (SELECT Cell.id, Res.id AS Res_id, Obs, Result, Obj_id_r FROM Cell, Res, Obj AS Run, Obj AS Var WHERE Var.Ident = '&chr(39)&vident&chr(39)&' AND Cell.Obj_id_v = Var.id AND Cell.Obj_id_r = Run.id AND Run.Ident = '&chr(39)&Runident&chr(39)&' AND Res.Cell_id = Cell.id) AS Temp LEFT JOIN Resinfo ON Temp.Res_id = Resinfo.id '; index i:= DBquery(Odbc,a); index j:= dblabels(i); dbtable(i,j) 56,120,1 48,22 2,700,47,516,612 39325,65535,39321 vident,runident Enter variable Ident 'Op_en1912' 168,83,1 48,27 [Formnode Enter_variable1] 52425,39321,65535 Enter variable 0 288,24,1 176,13 1,0,0,1,0,0,0,170,0,1 52425,39321,65535 Enter_variable Newest run newestrun(Enter_variable) 288,60,1 48,12 Var info read_mean(Enter_variable) 288,108,1 48,12 2,56,66,1205,308,0,MIDM [Sys_localindex('J'),Sys_localindex('I')] (a,inde) Makeind The input table a must have a structure that is also used as input for MDTable function. The function removes one column with location information and makes a dimension (index) with the locations in the column. Inde is the (local) index that will be added. Note that unlike MDTable function, this can use local indices in the output. if size(a.m)= 1 then a else ( a:= if inde = a[@.m=1] then a else 0; index m:= slice(a.m,(2..size(a.m))); a:= a[.m=m]) 56,176,1 48,12 2,283,62,476,224 a,inde (a) Get res.id Makes a multi-dimensional array with the same structure as the original variable that was stored into the Opasnet Base. However, the indices do not have original names. They are named In1, In2,... The contents of the array are the res.ids of the variable. The input parameter must be a 2D table with the structure that comes from the Read_mean function. 1) Slices the necessary columns from the input table and converts that to a 2D table that has the same structure as is used for input to the function MDTable. 2) Defines the local indices (up to 10), and changes a location column to a dimension one at a time until all columns have been changed. index k:= ['Iident','Location','id']; a:= a[.j=k]; index L:= a[@k=1]&'+'&textify(a[@k=3]); index m:= concat(a[.i=unique(a[@k=1],a.i), @k=1],['Result']); index n:= a[.i=unique(a[@k=3],a.i), @k=3]; a:= a[@.i=@L]; a:= a[L=(m)&'+'&textify(n), @k=2]; a:= if m='Result' then n else a; index in1:= a[n=unique(a[@m=1],n),@m=1]; index in2:= a[n=unique(a[@m=2],n),@m=2]; index in3:= a[n=unique(a[@m=3],n),@m=3]; index In4:= a[n=unique(a[@m=4],n),@m=4]; index In5:= a[n=unique(a[@m=5],n),@m=5]; index in6:= a[n=unique(a[@m=6],n),@m=6]; index in7:= a[n=unique(a[@m=7],n),@m=7]; index in8:= a[n=unique(a[@m=8],n),@m=8]; index in9:= a[n=unique(a[@m=9],n),@m=9]; index in10:= a[n=unique(a[@m=10],n),@m=10]; a:= makeind(a, in1); a:= makeind(a, in2); a:= makeind(a, in3); a:= makeind(a, in4); a:= makeind(a, in5); a:= makeind(a, in6); a:= makeind(a, in7); a:= makeind(a, in8); a:= makeind(a, in9); a:= makeind(a, in10); sum(sum(a,a.m),a.n) 56,152,1 48,12 2,669,44,476,545 a Var mean get_mean(Enter_variable) 288,132,1 48,12 2,547,35,416,622,0,MIDM [Sys_localindex('IN2'),Sys_localindex('IN3')] [Sys_localindex('IN1'),1,Sys_localindex('IN4'),1,Sys_localindex('IN5'),1,Sys_localindex('IN3'),1,Sys_localindex('IN2'),1] (vident:text, runident:optional) Get mean Gives the mean result of a (multidimensional) variable stored in the Opasnet Base. The procedure is simple because it utilises the variable structure (with res_ids) derived by the get_res_id function. var a:= read_mean(vident, runident); index o:= a[.j='id']; var output:= a[@.i=@o, .j='Mean']; a:= get_res_id(a); output[o=a] 56,200,1 48,12 2,665,82,476,428 vident,runident (vident:text, runident:optional) Get sample Gives the sample result of a (multidimensional) variable stored in the Opasnet Base. The procedure is simple because it utilises the variable structure (with res_ids) derived by the get_res_id function. Note that if the Analytica samplesize is smaller than the samplesize stored in the Opasnet Base, the extra samples will be discarded. If the samplesize is larger, the remaining rows will be null. 1) Brings the data into the right structure. 2) Chooses whether the actual result is numerical (in the Result column) or text (in the Description column). var a:= read_sample(vident, runident); var b:= textify(get_res_id(read_mean(vident,runident))); index k:= textify(a[.j='id'])&'+'&textify(a[.j='Obs']); index runn:= textify(min(a[.j='Obs'])..max(a[.j='Obs'])); a:= a[@.i=@k]; a:= a[k=b&'+'&runn]; a:= if max(runn)=0 then a[@runn=1] else a[@runn=@run]; var c:= if a[.j='Restext']='' then 0 else 1; c:= sum(sum(sum(sum(sum(sum(sum(sum(sum(sum(c)))))))))); if c=0 then a[.j='Result'] else a[.j='Restext'] 56,224,1 48,12 2,641,28,476,556 vident,runident Var sample get_sample(Enter_variable) 288,156,1 48,12 2,226,324,416,303,0,MEAN [Sys_localindex('IN5'),Sys_localindex('IN3')] [Sys_localindex('IN1'),1,Sys_localindex('IN2'),1,Sys_localindex('IN4'),1,Sys_localindex('IN3'),1,Sys_localindex('J'),1,Sys_localindex('IN5'),1] (runid) Identfind Finds the Ident for the run (or another object) that has the id runid. index i:= DBquery(Odbc,' SELECT Ident FROM Obj WHERE Obj.id = "'&runid&'" '); index j:= dblabels(i); var a:= dbtable(i,j); a[@i=1, @j=1] 56,64,1 48,12 2,732,65,516,589 39325,65535,39321 runid Var run info Describes the runs of the defined variable. This should be made a function. var_run_info(Enter_variable) 288,84,1 48,12 2,136,146,1111,285,0,MIDM [Sys_localindex('J'),Sys_localindex('I')] (vident:text) Var run info This function checks for the newest result (according to run_id) of the variable. The function is used if the user does not define the run_id as an optional parameter in functions Read_mean and Read_sample. PARAMETERS: * Vident: the Ident of the variable in the Opasnet Base. var a:= ' SELECT Var.Ident, Var.Name, Var.Unit, Run.Ident AS Runident, Act.When, Act.Who, Run.Name as Method FROM Obj as Var, Obj as Run, Cell, Objinfo AS Act WHERE Var.Ident = '&chr(39)&vident&chr(39)&' AND Var.id = Cell.Obj_id_v AND Run.id = Cell.Obj_id_r AND Run.id = Act.id GROUP BY Var.id, Run.id '; index i:= DBquery(Odbc,a); index j:= dblabels(i); dbtable(i,j) 56,40,1 48,13 2,678,59,476,566 39325,65535,39321 vident Use these functions to retireve data from the Opasnet base: * Newest_run: finds the newest run of the object. * Var_run_info: Finds the run information of the object. * Read_mean: Reads the means of each cell. * Get_mean * Get_sample: Reads the whole sample. Note! These should be updated when we get experience about what we actually want out. 280,285,-1 168,101 (a) Textify Changes an integer of any length to a text value. This bypasses the number formatting problem that tends to convert e.g. 93341 to '93.34K'. If the number is not integer, up to three digits after the decimal point will be taken as well. for y[]:= a do ( if istext(y) then y else ( var x:= 1; var b:= ''; var c:= if y<1 then 1 else floor(logten(y))+1; while x<= c do ( b:= (y-floor(y/10)*10)&b; y:= floor(y/10); x:= x+1); b) ) 56,248,1 48,12 2,102,90,476,371 a Details ktluser 8. Decta 2008 3:01 48,24 184,496,1 48,24 1,30,288,495,456,17 (a; x:optional = 1; e, f:optional=0) Doloccell 2) Only the deterministic information about variables are considered (therefore mean). Makes a 2D table of the locres info. 3) Makes a table with fields required by the Loccell and Cell tables. 4) Reduces one dimension by expanding the length from the length of Cell to that of Loccell. index j:= ['id', 'Location', 'Cell_id', 'Loc_id', 'Obj_id_v', 'Obj_id_r', 'Mean', 'N']; index h:= a.j[@.j=1..size(a.j)-1]; {index L:= copyindex(a.j); var b:= if data_table_or_model_ = 'Data table' then size(parameter) else 1; index cell_id:= 1..size(a.i)*b;} index i:= 1..size(a.i)*size(h); {a:= a[.j=L, .i=cell_id];} var c:= Objects[@.i=x]; a:= array(j,[ i[@i=@a.i+size(a.i)*(@h-1)]+e, a[.j=h]&'', a.i+f, h, c[.j='Ident'], '', a[.j='Result'], if c[.j='Probabilistic?']=0 then 0 else samplesize]); concatrows(a,h,a.i,i) 400,288,1 48,13 2,627,78,556,561 a,x,e,f (a: prob; probabilistic; e, f: optional=0) Doresult index runn:= if Probabilistic=1 then copyindex(run) else [0]; index i:= (1..size(max(a.i,run))*size(runn))+f; a:= if Probabilistic=1 then a[run=runn] else (if runn=0 then mean(a) else mean(a)); a:= a[.j='Result']; index j:= ['id','Cell_id','Obs','Result','Restext']; a:= array(j,[0, a.i+e, runn, (if istext(a) then 0 else a) , (if istext(a) then a else 0)]); a:= concatrows(a,a.i,runn, i); a:= if j='id' then i else a 400,264,1 48,13 2,242,24,476,526 a,probabilistic,e,f (a) Dolocation var b:= [0]; var c:= [0]; var e:= [0]; var f:= [0]; var x:= 1; while x<= size(a.j)-1 do ( var h:= a[@.j=x]; var d:= h[.i=unique(h,h.i)]; b:= concat(b,d); c:= concat(c,(if d=0 then slice(a.j,x) else slice(a.j,x))); e:= concat(e,1..size(d)); x:= x+1); index i:= 1..size(b)-1; index j:= ['id','Obj_id_i', 'Location', 'Roww', 'Description']; array(j,[i, slice(c,i+1), slice(b,i+1)&'', slice(e,i+1), '']); 400,240,1 48,12 2,671,164,503,486 a Concatenation UDFs This library contains functions to make various instances of concatenation more convenient. Concat3 thru Concat10 are generalizations of the built-in Concat function which concatenate from 3 to 10 arrays in a single call (while the built-in Concat concatenates two arrays). ConcatRows concatenates all the rows of a single array. David Kendall & Lonnie Chrisman Mon, Jan 26, 2004 8:49 AM Lonnie Wed, Sep 05, 2007 3:23 PM 48,24 184,328,1 68,20 1,0,0,1,1,1,0,0,0,0 1,50,200,488,454,23 (A1, A2, A3: ArrayType; I1, I2, I3, J: IndexType ) Concat3 Concatenates three arrays, A1, A2, and A3. I1, I2, and I3 are the indexes that are joined; J is the index of the new array; J usually is the concatenation of I1, I2, and I3 Index I12 := Concat(I1,I2); Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, J ) 88,64,1 48,26 2,56,56,986,596 A1,A2,A3,I1,I2,I3,J (A1, A2, A3, A4: ArrayType; I1, I2, I3, I4, J: IndexType ) Concat4 Concatenates four arrays, A1, A2, A3, and A4. I1, I2, I3, and I4 are the indexes that are joined; J is the index of the new array; J usually is the concatenation of I1, I2, I3, and I4. Index I12 := Concat(I1,I2); Index I123:= Concat(I12, I3); Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, J); 192,64,1 48,24 2,30,30,986,596 A1,A2,A3,A4,I1,I2,I3,I4,J 0 (A1, A2, A3, A4, A5, A6, A7, A8, A9: ArrayType; I1, I2, I3, I4, I5, I6, I7, I8, I9, J: IndexType) Concat9 Concatenates nine arrays, A1, ..., A9. I1, ..., I9 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I9. Index I12 := Concat(I1,I2); Index I123 := Concat(I12, I3); Index I1234 := Concat(I123, I4); Index I12345 := Concat(I1234, I5); Index I123456 := Concat(I12345, I6); Index I1234567 := Concat(I123456, I7); Index I12345678 := Concat(I1234567, I8); Concat( Concat( Concat( Concat( Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, I12345), A6, I12345, I6, I123456), A7, I123456, I7, I1234567), A8, I1234567, I8, I12345678), A9, I12345678, I9, J); 88,232,1 48,24 2,27,120,469,638 A1,A2,A3,A4,A5,A6,A7,A8,A9,I1,I2,I3,I4,I5,I6,I7,I8,I9,J 0 (A1, A2, A3, A4, A5: ArrayType; I1, I2, I3, I4, I5, J: IndexType ) Concat5 Concatenates five arrays, A1, ..., A5. I1, ..., I5 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I5. Index I12 := Concat(I1,I2); Index I123:= Concat(I12, I3); Index I1234 := Concat(I123, I4); Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, J); 88,120,1 48,24 2,160,160,986,596 A1,A2,A3,A4,A5,I1,I2,I3,I4,I5,J (A1, A2, A3, A4, A5, A6: ArrayType; I1, I2, I3, I4, I5, I6, J: IndexType ) Concat6 Concatenates six arrays, A1, ..., A6. I1, ..., I6 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I6. Index I12 := Concat(I1,I2); Index I123:= Concat(I12, I3); Index I1234 := Concat(I123, I4); Index I12345 := Concat(I1234, I5); Concat( Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, I12345), A6, I12345, I6, J); 192,120,1 48,24 2,644,94,602,712 A1,A2,A3,A4,A5,A6,I1,I2,I3,I4,I5,I6,J 0 (A1, A2, A3, A4, A5, A6, A7: ArrayType; I1, I2, I3, I4, I5, I6, I7, J: IndexType ) Concat7 Concatenates seven arrays, A1, ..., A7. I1, ..., I7 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I7. Index I12 := Concat(I1,I2); Index I123:= Concat(I12, I3); Index I1234 := Concat(I123, I4); Index I12345 := Concat(I1234, I5); Index I123456 := Concat(I12345, I6); Concat( Concat( Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, I12345), A6, I12345, I6, I123456), A7, I123456, I7, J); 88,176,1 48,24 2,580,98,551,565 A1,A2,A3,A4,A5,A6,A7,I1,I2,I3,I4,I5,I6,I7,J (A1, A2, A3, A4, A5, A6, A7, A8: ArrayType; I1, I2, I3, I4, I5, I6, I7, I8, J: IndexType ) Concat8 Concatenates eight arrays, A1, ..., A8. I1, ..., I8 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I8. Index I12 := Concat(I1,I2); Index I123:= Concat(I12, I3); Index I1234 := Concat(I123, I4); Index I12345 := Concat(I1234, I5); Index I123456 := Concat(I12345, I6); Index I1234567 := Concat(I123456, I7); Concat( Concat( Concat( Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, I12345), A6, I12345, I6, I123456), A7, I123456, I7, I1234567), A8, I1234567, I8, J); 192,176,1 48,24 2,12,98,561,737 A1,A2,A3,A4,A5,A6,A7,A8,I1,I2,I3,I4,I5,I6,I7,I8,J 0 (A1, A2, A3, A4, A5, A6, A7, A8, A9, A10: ArrayType; I1, I2, I3, I4, I5, I6, I7, I8, I9, I10, J: IndexType) Concat10 Concatenates ten arrays, A1, ..., A10. I1, ..., I10 are the indexes joined; J is the index of the new array; J usually is the concatenation of I1, ..., I10. Index I12 := Concat(I1,I2); Index I123 := Concat(I12, I3); Index I1234 := Concat(I123, I4); Index I12345 := Concat(I1234, I5); Index I123456 := Concat(I12345, I6); Index I1234567 := Concat(I123456, I7); Index I12345678 := Concat(I1234567, I8); Index I123456789 := Concat(I12345678, I9); Concat( Concat( Concat( Concat( Concat( Concat( Concat( Concat( Concat( A1,A2,I1,I2,I12 ), A3, I12, I3, I123), A4, I123, I4, I1234), A5, I1234, I5, I12345), A6, I12345, I6, I123456), A7, I123456, I7, I1234567), A8, I1234567, I8, I12345678), A9, I12345678, I9, I123456789), A10, I123456789, I10, J); 192,232,1 48,24 2,542,93,632,744 A1,A2,A3,A4,A5,A6,A7,A8,A9,A10,I1,I2,I3,I4,I5,I6,I7,I8,I9,I10,J 0 (A : ArrayType ; RowIndex,ColIndex,ResultIndex : IndexType) ConcatRows (A,I,J,K) Takes an array, A indexed by RowIndex & ColIndex, and concatenates each row, henceforth flattening the array by one dimension. The result is indexed by ResultIndex, which must be an index with size(RowIndex) * size(ColIndex) elements. index L := [ identifier of RowIndex, identifier of ColIndex, "val"]; slice(Mdarraytotable(A,ResultIndex,L),L,3) 320,64,1 64,24 2,499,85,478,348 A,RowIndex,ColIndex,ResultIndex ODBC Library Lonnie Thu, Sep 11, 1997 2:15 PM Lonnie Tue, Feb 05, 2008 10:03 AM 48,24 56,328,1 52,20 1,1,1,1,1,1,0,0,0,0 1,20,272,499,462,17 Arial, 13 (A:ArrayType;I:IndexType;L:IndexType;row:IndexType;dbTableName) InsertRecSql Generates the SQL "INSERT INTO" statement for one line of table A. A is a 2-D table indexed by rows I and columns L. L's domain serves as the column names in the database table. dbTableName is the name of the table in the database. The result begins with two semi-colons, since it will be used with an SQL statement preceeding it. 29.8.2008 Jouni Tuomisto I added the parameter IGNORE because it ignores rows that would cause duplicate-key violations. This way, there is no need to check for e.g. existing locations of new indices. 6.1.2009 Jouni Tuomisto I changed the A[I=row] to A[@I=@row] because the original function does not work correctly, if there are non-unique rows in the index. (';;INSERT IGNORE INTO ' & dbTableName & '(' & JoinText(L,L,',') & ') VALUES (' & Vallist(A[@I=@row],L)) & ') ' 184,32,1 52,24 2,591,203,487,469 A,I,L,row,dbTableName (V:ArrayType;I:IndexType) ValList Takes a list of values, and returns a string which the concatenation of each value, separated by commas, and with each value quoted. JoinText( '''' & V & '''', I, ',') 72,32,0 52,24 2,642,360,476,224 V,I 1,F,4,14,0,0 (Tabl:ArrayType;RowIndex:IndexType;LabelIndex:IndexType;dbTableName) WriteTableSql(Table,Rows,Labels,dbTableName) Returns the SQL that will write the table to the database table. This can be used as the second argument to DBWrite. This SQL statement replaces the entire contents of an existing table with the new data. 'DELETE FROM '& Dbtablename & JoinText(Insertrecsql(Tabl, Rowindex, Labelindex, Rowindex, Dbtablename),RowIndex) 328,32,1 88,24 2,728,341,510,476 Tabl,RowIndex,LabelIndex,dbTableName (Tabl:ArrayType;RowIndex:IndexType;LabelIndex:IndexType;dbTableName) AppendTableSql(Table,Rows,Labels,dbTableName) Returns the SQL that will write the table to the database table. This can be used as the second argument to DBWrite. This SQL statement replaces the entire contents of an existing table with the new data. JoinText(Insertrecsql(Tabl, Rowindex, Labelindex, Rowindex, Dbtablename),RowIndex) 328,88,1 88,24 2,559,127,510,476 Tabl,RowIndex,LabelIndex,dbTableName (table:texttype) Card Brings the largest id number from the table defined in the parameter. index i:= DBquery(odbc,' SELECT MAX(id) AS id FROM '&table&' '); index j:= dblabels(i); max(max(DBTable(i, j ),i),j) 56,272,1 48,12 2,102,90,476,331 39325,65535,39321 table Tables List of such tables in Opasnet Base that are being written to by this module. ['Obj','Cell','Loc','Loccell','Sett','Item','Res'] 280,256,1 48,13 2,15,594,158,227,0,MIDM [Variable W_sett] ['Obj','Cell','Loc','Loccell','Sett','Item','Res'] Cardinals The largest id values for the selected Opasnet Base tables. The table is updated by pressing the R_cardinals button. Table(Table1)( 614,93.79K,1829,517.797K,47,146,1.015213M ) 280,232,1 48,12 2,634,394,476,332 2,193,270,416,303,0,MIDM 2,87,329,416,303,0,MIDM 39325,65535,39321 2,I,4,2,0,0,4,0,$,0,"ABBREV",0 [Variable W_sett] (in, table; cond:texttype) Findid This function gets an id from a table. in: the property for which the id is needed. In MUST be unique in cond. table: the table from where the id is brought. The table MUST have .j as the column index, .i as the row index, and a column named 'id'. cond: the name of the field that is compared with in. Cond must be text. index L:= in[.i=unique(in, in.i)]; var a:= if (L&' ') = (table[.j=cond]&' ') then table[.j='id'] else 0; a:= sum(a, table.i)&''; a[.L=in] 56,248,1 48,12 2,636,101,494,398 in,table,cond [Variable W_sett] (type) Types Finds the objects that are of the object type "type" (the only parameter of this function). Based on the information in Objects1. var a:= if Objects1[.j='Typ_id']=type then 1 else 0; Objects1[Object_all=subset(a),.j='id'] 56,224,1 48,12 2,551,191,476,344 type (var, table) Write For Lumina AWP use the following should be used: 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97;Database=opasnet_base;User=resultwriter; Password=;Option=3' For internal THL use the following should be used: 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102;Database=opasnet_base;User=resultwriter; Password='&writerpsswd&';Option=3' if size(var)>0 then dbwrite((if platform = 'Lumina AWP' then 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97' else 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102')&';Database=opasnet_base;User=resultwriter; Password='&writerpsswd&';Option=3' , appendtablesql(var,var.i, var.j, table&' ')) 56,296,1 48,12 2,776,65,476,457 var,table ODBC write For Lumina AWP use the following should be used: 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97;Database=opasnet_base;User=resultwriter; Password=;Option=3' For internal THL use the following should be used: 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102;Database=opasnet_base;User=resultwriter; Password='&writerpsswd&';Option=3' var a:= if platform='Lumina AWP' then 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97' else 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102'; a&';Database=opasnet_base;User=resultwriter; Password='&writerpsswd&';Option=3' 168,232,1 48,12 1,1,0,1,1,1,0,,0, 2,102,90,495,346 2,168,178,833,303,0,MIDM [] Opasnet username The username for Opasnet wiki 'Add username' 168,161,1 48,22 1,1,1,1,1,1,0,0,0,0 [Formnode Username1] 52425,39321,65535 Opasnet password The user's password for Opasnet wiki. 'Add password' 168,200,1 48,22 1,1,1,1,1,1,0,0,0,0 [Formnode Password1] 52425,39321,65535 ODBC Contains the parameters for the open database connectivity (ODBC). For Lumina AWP use the following should be used: 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97;Database=opasnet_base;User=result_reader; Password=ora4ever;Option=3' For THL internal use the following should be used: 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102;Database=opasnet_base;User=result_reader; Password=ora4ever;Option=3' var a:= if platform='Lumina AWP' then 'Driver={MySQL ODBC 3.51 Driver};Server=193.167.179.97' else 'Driver={MySQL ODBC 5.1 Driver};Server=10.66.10.102'; a&';Database=opasnet_base;User=result_reader; Password=ora4ever;Option=3' 168,128,1 48,12 1,1,0,1,1,1,0,,0, 2,102,90,508,420 2,56,66,918,303,0,MIDM Dim index i:= copyindex(D_i); index j:= copyindex(D_j); Dim1[d_i=i, d_j=j] 400,160,1 48,13 1,1,0,1,1,1,0,0,0,0 2,89,98,476,224 2,635,328,556,489,0,MIDM 19661,54073,65535 [D_i,D_j] [Sys_localindex('J'),Sys_localindex('I')] Ind index i:= copyindex(I_i); index j:= copyindex(I_j); Ind1[I_i=i, I_j=j] 400,184,1 48,13 1,1,0,1,1,1,0,0,0,0 2,380,47,476,296 2,490,110,649,655,0,MIDM 19661,54073,65535 [Sys_localindex('J'),Sys_localindex('I')] Loc index i:= copyindex(L_i); index j:= copyindex(L_j); Loc1[L_i=i, L_j=j] 400,96,1 48,13 1,1,0,1,1,1,0,0,0,0 2,370,45,476,445 2,43,42,1147,516,0,MIDM 19661,54073,65535 [Sys_localindex('J'),Sys_localindex('I')] Obj This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. index i:= copyindex(O_i); index j:= copyindex(O_j); Obj2[O_i=i, O_j=j] 400,48,1 48,13 1,1,0,1,1,1,0,0,0,0 2,378,21,493,501 2,21,103,977,421,0,MIDM 19661,54073,65535 [Sys_localindex('J'),Sys_localindex('I')] [Variable W_sett] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] Standard versions 400,112,-1 72,100 1,0,0,1,0,1,0,,0, D_i [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22] 168,24,1 48,12 [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22] D_j ['id','Ident','Name'] 168,48,1 48,12 ['id','Ident','Name'] I_i [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34] 168,72,1 48,12 [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34] I_j ['id','Iident','Iname','Did','Dident','Dname'] 168,96,1 48,12 ['id','Iident','Iname','Did','Dident','Dname'] L_i 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56,120,1 48,12 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222,1223,1224,1225,1226,1227,1228,1229,1230,1231,1232,1233,1234,1235,1236,1237,1238,1239,1240,1241,1242,1243,1244,1245,1246,1247,1248,1249,1250,1251,1252,1253,1254,1255,1256,1257,1258,1259,1260,1261,1262,1263,1264,1265,1266,1267,1268,1269,1270,1271,1272,1273,1274,1275,1276,1277,1278,1279,1280,1281,1282,1283,1284,1285,1286,1287,1288,1289,1290,1291,1292,1293,1294,1295,1296,1297,1298,1299,1300,1301,1302,1303,1304,1305,1306,1307,1308,1309,1310,1311,1312,1313,1314,1315,1316,1317,1318,1319,1320,1321,1322,1323,1324,1325,1326,1327,1328,1329,1330,1331,1332,1333,1334,1335,1336,1337,1338,1339,1340,1341,1342,1343,1344,1345,1346,1347,1348,1349,1350,1351,1352,1353,1354,1355,1356,1357,1358,1359,1360,1361,1362,1363,1364,1365,1366,1367,1368,1369,1370,1371,1372,1373,1374,1375,1376,1377,1378,1379,1380,1381,1382,1383,1384,1385,1386,1387,1388,1389,1390,1391,1392,1393,1394,1395,1396,1397,1398,1399,1400,1401,1402,1403,1404,1405,1406,1407,1408,1409,1410,1411,1412,1413,1414,1415,1416,1417,1418,1419,1420,1421,1422,1423,1424,1425,1426,1427,1428,1429,1430,1431,1432,1433,1434] L_j ['id','Obj_id_i','Location','Roww','Description','id','Ident','Name','Unit','Objtype_id','Page','Wiki_id'] 56,144,1 48,12 ['id','Obj_id_i','Location','Roww','Description','id','Ident','Name','Unit','Objtype_id','Page','Wiki_id'] O_i [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54,55,56,57,58,59,60,61,62,63,64,65,66,67,68,69,70,71,72,73,74,75,76,77,78,79,80,81,82,83,84,85,86,87,88,89,90,91,92,93,94,95,96,97,98,99,100,101,102,103,104,105,106,107,108,109,110,111,112,113,114,115,116,117,118,119,120,121,122,123,124,125,126,127,128,129,130,131,132,133,134,135,136,137,138,139,140,141,142,143,144,145,146,147,148,149,150,151,152,153,154,155,156,157,158,159,160,161,162,163,164,165,166,167,168,169,170,171,172,173,174,175,176,177,178,179,180,181,182,183,184,185,186,187,188,189,190,191,192,193,194,195,196,197,198,199,200,201,202,203,204,205,206,207,208,209,210,211,212,213,214,215,216,217,218,219,220,221,222,223,224,225,226,227,228,229,230,231,232,233,234,235,236,237,238,239,240,241,242,243,244,245,246,247,248,249,250,251,252,253,254,255,256,257,258,259,260,261,262,263,264,265,266,267,268,269,270,271,272,273,274,275,276,277,278,279,280,281,282,283,284,285,286,287,288,289,290,291,292,293,294] 56,24,1 48,13 [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54,55,56,57,58,59,60,61,62,63,64,65,66,67,68,69,70,71,72,73,74,75,76,77,78,79,80,81,82,83,84,85,86,87,88,89,90,91,92,93,94,95,96,97,98,99,100,101,102,103,104,105,106,107,108,109,110,111,112,113,114,115,116,117,118,119,120,121,122,123,124,125,126,127,128,129,130,131,132,133,134,135,136,137,138,139,140,141,142,143,144,145,146,147,148,149,150,151,152,153,154,155,156,157,158,159,160,161,162,163,164,165,166,167,168,169,170,171,172,173,174,175,176,177,178,179,180,181,182,183,184,185,186,187,188,189,190,191,192,193,194,195,196,197,198,199,200,201,202,203,204,205,206,207,208,209,210,211,212,213,214,215,216,217,218,219,220,221,222,223,224,225,226,227,228,229,230,231,232,233,234,235,236,237,238,239,240,241,242,243,244,245,246,247,248,249,250,251,252,253,254,255,256,257,258,259,260,261,262,263,264,265,266,267,268,269,270,271,272,273,274,275,276,277,278,279,280,281,282,283,284,285,286,287,288,289,290,291,292,293,294] O_j ['id','Ident','Name','Unit','Objtype_id','Page','Wiki_id'] 56,48,1 48,13 ['id','Ident','Name','Unit','Objtype_id','Page','Wiki_id'] Sett This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. index i:= copyindex(S_i); index j:= copyindex(S_j); Sett1[S_i=i, S_j=j] 400,72,1 48,13 1,1,0,1,1,1,0,0,0,0 2,378,21,493,501 2,227,134,319,515,0,MIDM 19661,54073,65535 [Sys_localindex('J'),Sys_localindex('I')] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] Item This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. index i:= copyindex(It_i); index j:= copyindex(It_j); Item1[it_i=i, it_j=j] 400,120,1 48,13 1,1,0,1,1,1,0,0,0,0 2,378,21,493,501 2,298,216,382,519,0,MIDM 19661,54073,65535 [Sys_localindex('J'),Sys_localindex('I')] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] It_i [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35] 56,168,1 48,13 [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35] It_j ['id','Sett_id','Obj_id','Fail'] 56,192,1 48,13 ['id','Sett_id','Obj_id','Fail'] S_i [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28] 56,72,1 48,13 [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,25,26,27,28] S_j ['id','Obj_id','Settype_id'] 56,96,1 48,13 ['id','Obj_id','Settype_id'] Dim Table(D_i,D_j)( 43,'Vehicle_type','Vehicle type', 45,'Transport_mode','Transport mode', 46,'Cost_type','Cost type', 47,'Composite_fraction','Composite fraction', 51,'Food_source','The method for food production', 52,'Feed_pollutant','Decision about fish feed', 53,'Salmon_recomm','Decision about samon consumption recommendation', 32,'0','No dimension has been identified', 54,'Parameter','Statistical and other parameters of a variable', 42,'Environ_compartment','Environmental compartment', 41,'Emission_source','Emission source', 36,'Pollutant','Pollutant', 34,'Health_impact','Health impact', 33,'Decision','Possible range of decisions for a single decision-maker', 35,'Time','Time', 40,'Period','Period', 48,'Age','Age', 37,'Spatial_location','Spatial location', 38,'Length','Length', 49,'Municipality_fin','Municipalities in Finland', 44,'Person_or_group','Person or group', 39,'Non_health_impact','Non-health impact' ) 280,160,1 48,13 1,1,1,1,1,1,0,0,0,0 2,89,98,476,224 2,604,56,556,489,0,MIDM 39325,65535,39321 [D_i,D_j] [D_j,D_i] Ind Table(I_i,I_j)( 55,'Salmon_decision','',33,'Decision','Possible range of decisions for a single decision-maker', 80,'Reg_poll','',33,'Decision','Possible range of decisions for a single decision-maker', 81,'Recommendation1','',33,'Decision','Possible range of decisions for a single decision-maker', 83,'H1899','',33,'Decision','Possible range of decisions for a single decision-maker', 84,'H1898','',33,'Decision','Possible range of decisions for a single decision-maker', 56,'Hma_area','',37,'Spatial_location','Spatial location', 57,'Hma_region','',37,'Spatial_location','Spatial location', 58,'Hma_zone','',37,'Spatial_location','Spatial location', 88,'Condb_location1','',37,'Spatial_location','Spatial location', 93,'Op_en2672','',37,'Spatial_location','Spatial location', 59,'Year_1','',35,'Time','Time', 61,'Year_2','',35,'Time','Time', 82,'Year3','',35,'Time','Time', 60,'Op_en2665','Cause of death 1',34,'Health_impact','Health impact', 62,'Cause_of_death_2','',34,'Health_impact','Health impact', 85,'Cause_of_death3','',34,'Health_impact','Health impact', 63,'Length_1','',38,'Length','Length', 70,'Output_1','',39,'Non_health_impact','Non-health impact', 65,'Period_1','',40,'Period','Period', 86,'Run','',32,'0','No dimension has been identified', 71,'Vehicle_noch','',43,'Vehicle_type','Vehicle type', 92,'Vehicle_1','',43,'Vehicle_type','Vehicle type', 72,'Stakeholder_1','',44,'Person_or_group','Person or group', 73,'Mode1','',45,'Transport_mode','Transport mode', 74,'Cost_structure_1','',46,'Cost_type','Cost type', 75,'Comp_fr_1','',47,'Composite_fraction','Composite fraction', 76,'Age1','',48,'Age','Age', 77,'Municipality_fin1','',49,'Municipality_fin','Municipalities in Finland', 79,'Salmon1','',51,'Food_source','The method for food production', 78,'Pollutant1','',36,'Pollutant','Pollutant', 89,'Condb_agent1','',36,'Pollutant','Pollutant', 91,'Condb_agent2','',36,'Pollutant','Pollutant', 87,'Condb_compartment1','',42,'Environ_compartment','Environmental compartment', 90,'Condb_param1','',54,'Parameter','Statistical and other parameters of a variable' ) 280,184,1 48,13 1,1,1,1,1,1,0,0,0,0 2,380,47,476,296 2,232,242,874,303,0,MIDM 2,12,22,876,493,0,MIDM 39325,65535,39321 [I_j,I_i] [I_j,I_i] Loc Table(L_i,L_j)( 1,1,'Business as usual',0,'',1,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 2,1,'Recommend restrictions to salmon consumption',0,'',2,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 3,1,'Stricter limits for fish feed pollutants',0,'',3,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 4,1,'Restrictions to salmon consumption AND stricter fish feed limits',0,'',4,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 26,2,'All causes',0,'',26,'Op_en2693','Testvariable','kg',1,2693,1, 197,6,'>= 5 km',0,'',197,'Ppmconc_bustraffic','PM2.5 concentration from bus traffic in Helsinki in 2020','ug/m3',1,0,0, 196,6,'< 5 km',0,'',196,'Ppmconc_bustraffic','PM2.5 concentration from bus traffic in Helsinki in 2020','ug/m3',1,0,0, 8,3,'2020',0,'',8,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 7,3,'1997',0,'',7,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 10,2,'Cardiopulmonary',0,'',10,'Op_en2693','Testvariable','kg',1,2693,1, 11,2,'Lung cancer',0,'',11,'Op_en2693','Testvariable','kg',1,2693,1, 12,2,'All others',0,'',12,'Op_en2693','Testvariable','kg',1,2693,1, 27,5,'Downtown',0,'',27,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 28,5,'Centre',0,'',28,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 29,5,'Suburb',0,'',29,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 30,5,'Länsi-Espoo',0,'',30,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 31,5,'Pohjois-Espoo',0,'',31,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 32,5,'Etelä-Espoo',0,'',32,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 33,5,'Keski-Espoo',0,'',33,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 34,5,'Länsi-Vantaa',0,'',34,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 35,5,'Keski-Vantaa',0,'',35,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 36,5,'Pohjois-Vantaa',0,'',36,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 37,5,'Itä-Vantaa',0,'',37,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 38,5,'Kanta-Helsinki',0,'',38,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 39,5,'Länsi-Helsinki',0,'',39,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 40,5,'Vanha-Helsinki',0,'',40,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 41,5,'Konalanseutu',0,'',41,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 42,5,'Pakilanseutu',0,'',42,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 43,5,'Malminseutu',0,'',43,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 44,5,'Itä-Helsinki',0,'',44,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 45,5,'1001',0,'',45,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 46,5,'1002',0,'',46,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 47,5,'1003',0,'',47,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 48,5,'1004',0,'',48,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 49,5,'1005',0,'',49,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 50,5,'1006',0,'',50,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 51,5,'1007',0,'',51,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 52,5,'1008',0,'',52,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 53,5,'1009',0,'',53,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 54,5,'1010',0,'',54,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 55,5,'1011',0,'',55,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 56,5,'1012',0,'',56,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 57,5,'1013',0,'',57,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 58,5,'1014',0,'',58,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 59,5,'1015',0,'',59,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 60,5,'1016',0,'',60,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 61,5,'1017',0,'',61,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 62,5,'1018',0,'',62,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 63,5,'1019',0,'',63,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 64,5,'1020',0,'',64,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 65,5,'1021',0,'',65,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 66,5,'1022',0,'',66,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 67,5,'1023',0,'',67,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 68,5,'1024',0,'',68,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 69,5,'1025',0,'',69,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 70,5,'1026',0,'',70,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 71,5,'1027',0,'',71,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 72,5,'1028',0,'',72,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 73,5,'1029',0,'',73,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 74,5,'1030',0,'',74,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 75,5,'1031',0,'',75,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 76,5,'1032',0,'',76,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 77,5,'1033',0,'',77,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 78,5,'1034',0,'',78,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 79,5,'1035',0,'',79,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 80,5,'1036',0,'',80,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 81,5,'1037',0,'',81,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 82,5,'1038',0,'',82,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 83,5,'1039',0,'',83,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 84,5,'1040',0,'',84,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 85,5,'1041',0,'',85,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 86,5,'1042',0,'',86,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 87,5,'1043',0,'',87,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 88,5,'1044',0,'',88,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 89,5,'1045',0,'',89,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 90,5,'1046',0,'',90,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 91,5,'1047',0,'',91,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 92,5,'1048',0,'',92,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 93,5,'1049',0,'',93,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 94,5,'1050',0,'',94,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 95,5,'1051',0,'',95,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 96,5,'1052',0,'',96,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 97,5,'1053',0,'',97,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 98,5,'1054',0,'',98,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 99,5,'1055',0,'',99,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 100,5,'1056',0,'',100,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 101,5,'1057',0,'',101,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 102,5,'1058',0,'',102,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 103,5,'1059',0,'',103,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 104,5,'1060',0,'',104,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 105,5,'1061',0,'',105,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 106,5,'1062',0,'',106,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 107,5,'1063',0,'',107,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 108,5,'1064',0,'',108,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 109,5,'1065',0,'',109,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 110,5,'1066',0,'',110,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 111,5,'1067',0,'',111,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 112,5,'1068',0,'',112,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 113,5,'1069',0,'',113,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 114,5,'1070',0,'',114,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 115,5,'1071',0,'',115,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 116,5,'1072',0,'',116,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 117,5,'1073',0,'',117,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 118,5,'1074',0,'',118,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 119,5,'1075',0,'',119,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 120,5,'1076',0,'',120,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 121,5,'1077',0,'',121,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 122,5,'1078',0,'',122,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 123,5,'1079',0,'',123,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 124,5,'1080',0,'',124,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 125,5,'1081',0,'',125,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 126,5,'1082',0,'',126,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 127,5,'1083',0,'',127,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 128,5,'1084',0,'',128,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 129,5,'1085',0,'',129,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 130,5,'1086',0,'',130,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 131,5,'1087',0,'',131,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 132,5,'1088',0,'',132,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 133,5,'1089',0,'',133,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 134,5,'1090',0,'',134,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 135,5,'1091',0,'',135,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 136,5,'1092',0,'',136,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 137,5,'1093',0,'',137,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 138,5,'1094',0,'',138,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 139,5,'1095',0,'',139,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 140,5,'1096',0,'',140,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 141,5,'1097',0,'',141,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 142,5,'1098',0,'',142,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 143,5,'1099',0,'',143,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 144,5,'1100',0,'',144,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 145,5,'1101',0,'',145,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 146,5,'1102',0,'',146,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 147,5,'1103',0,'',147,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 148,5,'1104',0,'',148,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 149,5,'1105',0,'',149,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 150,5,'1106',0,'',150,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 151,5,'1107',0,'',151,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 152,5,'1108',0,'',152,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 153,5,'1109',0,'',153,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 154,5,'1110',0,'',154,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 155,5,'1111',0,'',155,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 156,5,'1112',0,'',156,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 157,5,'1113',0,'',157,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 158,5,'1114',0,'',158,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 159,5,'1115',0,'',159,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 160,5,'1116',0,'',160,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 161,5,'1117',0,'',161,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 162,5,'1118',0,'',162,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 163,5,'1119',0,'',163,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 164,5,'1120',0,'',164,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 165,5,'1121',0,'',165,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 166,5,'1122',0,'',166,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 167,5,'1123',0,'',167,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 168,5,'1124',0,'',168,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 169,5,'1125',0,'',169,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 170,5,'1126',0,'',170,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 171,5,'1127',0,'',171,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 172,5,'1128',0,'',172,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 173,5,'1129',0,'',173,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 174,5,'1130',0,'',174,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 175,35,'2000',0,'',175,'Time','Time','s or date',2,2497,1, 176,3,'2001',0,'',176,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 177,3,'2002',0,'',177,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 178,3,'2003',0,'',178,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 179,3,'2004',0,'',179,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 180,3,'2005',0,'',180,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 181,3,'2006',0,'',181,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 182,3,'2007',0,'',182,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 183,3,'2008',0,'',183,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 184,3,'2009',0,'',184,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 185,3,'2010',0,'',185,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 186,3,'2011',0,'',186,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 187,3,'2012',0,'',187,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 188,3,'2013',0,'',188,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 189,3,'2014',0,'',189,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 190,3,'2015',0,'',190,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 191,3,'2016',0,'',191,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 192,3,'2017',0,'',192,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 193,3,'2018',0,'',193,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 194,3,'2019',0,'',194,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 418,1,'BAU3',0,'',418,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 198,8,' 6.00-20.00',0,'',198,'Comptraf_scenoutput','Composite traffic v.1 scenario outputs','various',1,0,0, 199,8,'20.00-24.00',0,'',199,'Comptraf_scenoutput','Composite traffic v.1 scenario outputs','various',1,0,0, 200,8,' 0.00- 6.00',0,'',200,'Comptraf_scenoutput','Composite traffic v.1 scenario outputs','various',1,0,0, 364,7,'Trips',0,'',364,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 365,7,'Trips by vehicle',0,'',365,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 366,7,'Vehicle km',0,'',366,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 367,7,'Parking lot',0,'',367,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 368,7,'Link intensity',0,'',368,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 369,7,'Vehicles',0,'',369,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 370,7,'Waiting',0,'',370,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 371,11,'Bus no change',0,'',371,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 372,11,'Bus one change',0,'',372,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 373,11,'Cab no change',0,'',373,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 374,11,'Cab one change',0,'',374,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 375,11,'Cab non-full',0,'',375,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 376,11,'Car',0,'',376,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 377,11,'No-change',0,'',377,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 378,12,'Passenger',0,'',378,'Fig_5c_expanding','Societal costs at different levels of guarantee','e/day',1,0,0, 379,12,'Society',0,'',379,'Fig_5c_expanding','Societal costs at different levels of guarantee','e/day',1,0,0, 380,13,'Car',0,'',380,'Bw1','Human body weight in Harjavalta','kg',1,2475,1, 381,13,'Composite',0,'',381,'Bw1','Human body weight in Harjavalta','kg',1,2475,1, 382,14,'Vehicle',0,'',382,'Testvariable2','Another variable for testing','kg',1,0,0, 383,14,'Driver',0,'',383,'Testvariable2','Another variable for testing','kg',1,0,0, 384,14,'Driving',0,'',384,'Testvariable2','Another variable for testing','kg',1,0,0, 385,14,'Parking',0,'',385,'Testvariable2','Another variable for testing','kg',1,0,0, 386,14,'Parking land',0,'',386,'Testvariable2','Another variable for testing','kg',1,0,0, 387,14,'Emissions',0,'',387,'Testvariable2','Another variable for testing','kg',1,0,0, 388,14,'Time',0,'',388,'Testvariable2','Another variable for testing','kg',1,0,0, 389,14,'Accidents',0,'',389,'Testvariable2','Another variable for testing','kg',1,0,0, 390,14,'Ticket',0,'',390,'Testvariable2','Another variable for testing','kg',1,0,0, 391,15,'0',0,'',391,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 392,15,'0.02',0,'',392,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 393,15,'0.05',0,'',393,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 394,15,'0.1',0,'',394,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 395,15,'0.25',0,'',395,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 396,15,'0.4',0,'',396,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 397,15,'0.45',0,'',397,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 398,15,'0.5',0,'',398,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 399,15,'0.55',0,'',399,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 400,15,'0.65',0,'',400,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 401,15,'0.75',0,'',401,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 402,15,'0.9',0,'',402,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 403,15,'1',0,'',403,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 404,16,'18-65',0,'',404,'Op_en1900','Pollutant health risk due to the consumption of salmon','avoided cases/a',1,1900,1, 405,16,'3',0,'',405,'Op_en1900','Pollutant health risk due to the consumption of salmon','avoided cases/a',1,1900,1, 406,17,'Harjavalta',0,'',406,'Op_en1903','Persistent pollutant concentrations in salmon','µg/kg',1,1903,1, 407,36,'Dieldrin',0,'',407,'Pollutant','Pollutant','-',2,2493,1, 408,36,'Toxaphene',0,'',408,'Pollutant','Pollutant','-',2,2493,1, 409,36,'Dioxin',0,'',409,'Pollutant','Pollutant','-',2,2493,1, 410,36,'PCB',0,'',410,'Pollutant','Pollutant','-',2,2493,1, 411,42,'Farmed salmon',0,'',411,'Environ_compartment','Environmental compartment','-',2,2490,1, 412,42,'Wild salmon',0,'',412,'Environ_compartment','Environmental compartment','-',2,2490,1, 413,42,'Market salmon',0,'',413,'Environ_compartment','Environmental compartment','-',2,2490,1, 414,33,'BAU',0,'',414,'Decision','Possible range of decisions for a single decision-maker','-',2,2496,1, 415,33,'More actions',0,'',415,'Decision','Possible range of decisions for a single decision-maker','-',2,2496,1, 416,33,'BAU2',0,'',416,'Decision','Possible range of decisions for a single decision-maker','-',2,2496,1, 417,33,'Restrict farmed salmon use',0,'',417,'Decision','Possible range of decisions for a single decision-maker','-',2,2496,1, 419,1,'More actions',0,'',419,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 421,1,'Restrict farmed salmon use2',0,'',421,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 422,34,'Cardiovascular',0,'',422,'Health_impact','Health impact','',2,2495,1, 423,10,'Home indoor',0,'Abbreviation in the Concentration database: I',423,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 424,10,'(Home) outdoor',0,'Abbreviation in the Concentration database: O',424,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 425,10,'(Personal) Work',0,'Abbreviation in the Concentration database: W',425,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 426,10,'Personal',0,'Abbreviation in the Concentration database: P',426,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 427,10,'Drinking water',0,'Abbreviation in the Concentration database: DW',427,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 428,10,'Indoor dust',0,'Abbreviation in the Concentration database: ID',428,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 429,10,'Human',0,'Abbreviation in the Concentration database: H',429,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 430,10,'Soil',0,'Abbreviation in the Concentration database: S',430,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 431,10,'Beverage',0,'Abbreviation in the Concentration database: B',431,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 432,10,'Food',0,'Abbreviation in the Concentration database: F',432,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 433,10,'In-Vehicle',0,'Abbreviation in the Concentration database: IV',433,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 434,10,'School',0,'Abbreviation in the Concentration database: SC',434,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 435,5,'Athens',0,'Country: Greece. Abbreviation in the Concentration Database: A',435,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 436,5,'Antwerp',0,'Country: Belgium. Abbreviation in the Concentration Database: ANT',436,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 437,5,'Antioch-Pittsburg',0,'Country: USA. Abbreviation in the Concentration Database: AP',437,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 438,5,'Antioch-Pittsburg A-P',0,'Country: USA. Abbreviation in the Concentration Database: A-P',438,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 439,5,'Arizona',0,'Country: USA. Abbreviation in the Concentration Database: AZ',439,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 440,5,'Basel',0,'Country: Germany. Abbreviation in the Concentration Database: B',440,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 441,5,'Baltimore',0,'Country: USA. Abbreviation in the Concentration Database: BAL',441,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 442,5,'Bayonne',0,'Country: USA. Abbreviation in the Concentration Database: BAY',442,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 443,5,'Bayonne-Ellizabeth',0,'Country: USA. Abbreviation in the Concentration Database: BE',443,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 444,5,'Copenhagen',0,'Country: Denmark. Abbreviation in the Concentration Database: C',444,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 445,5,'California',0,'Country: USA. Abbreviation in the Concentration Database: CA',445,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 446,5,'Columbus',0,'Country: USA. Abbreviation in the Concentration Database: CO',446,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 447,5,'Daegu',0,'Country: South Korea. Abbreviation in the Concentration Database: D',447,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 448,5,'Devils Lake',0,'Country: USA. Abbreviation in the Concentration Database: DLA',448,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 449,5,'Dublin',0,'Country: Ireland. Abbreviation in the Concentration Database: DU',449,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 450,5,'Elizabeth',0,'Country: USA. Abbreviation in the Concentration Database: ELI',450,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 451,5,'EPA Region 5.',0,'Country: USA. Abbreviation in the Concentration Database: EPA5',451,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 452,5,'Flanders',0,'Country: Belgium. Abbreviation in the Concentration Database: FLA',452,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 453,5,'Florence',0,'Country: Italy. Abbreviation in the Concentration Database: FL',453,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 454,5,'Grenoble',0,'Country: France. Abbreviation in the Concentration Database: G',454,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 455,5,'Germany',0,'Country: Germany. Abbreviation in the Concentration Database: GE',455,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 456,5,'Genoa',0,'Country: Italy. Abbreviation in the Concentration Database: GEN',456,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 457,5,'Greensboro GNC',0,'Country: USA. Abbreviation in the Concentration Database: GNC',457,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 458,5,'Greensboro',0,'Country: USA. Abbreviation in the Concentration Database: GRB',458,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 460,5,'Helsinki',0,'Country: Finland. Abbreviation in the Concentration Database: H',460,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 461,5,'Hannover',0,'Country: Germany. Abbreviation in the Concentration Database: HA',461,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 462,5,'Ile de France',0,'Country: France. Abbreviation in the Concentration Database: IDF',462,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 463,5,'Los Angeles',0,'Country: USA. Abbreviation in the Concentration Database: LA',463,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 464,5,'Milan',0,'Country: Italy. Abbreviation in the Concentration Database: M',464,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 465,5,'Minneapolis',0,'Country: USA. Abbreviation in the Concentration Database: MP',465,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 466,5,'Minnesota',0,'Country: USA. Abbreviation in the Concentration Database: MS',466,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 467,5,'Murcia',0,'Country: Spain. Abbreviation in the Concentration Database: MU',467,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 468,5,'Mexico City',0,'Country: Mexico. Abbreviation in the Concentration Database: MXC',468,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 469,5,'Oxford',0,'Country: England. Abbreviation in the Concentration Database: O',469,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 470,5,'Prague',0,'Country: Czech. Abbreviation in the Concentration Database: P',470,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 471,5,'Padua',0,'Country: Italy. Abbreviation in the Concentration Database: PA',471,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 472,5,'Puebla',0,'Country: Mexico. Abbreviation in the Concentration Database: PB',472,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 473,5,'Rouen',0,'Country: France. Abbreviation in the Concentration Database: R',473,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 475,5,'Strasbourg',0,'Country: France. Abbreviation in the Concentration Database: STR',475,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 476,5,'Umbria region',0,'Country: Italy. Abbreviation in the Concentration Database: UMB',476,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 477,5,'United States',0,'Country: USA. Abbreviation in the Concentration Database: USA',477,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 478,5,'Valdez',0,'Country: USA. Abbreviation in the Concentration Database: VAL',478,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 479,5,'Woodland',0,'Country: USA. Abbreviation in the Concentration Database: WDL',479,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 480,4,'66-25-1',0,'hexanal',480,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 481,4,'71-36-3',0,'1-butanol',481,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 482,4,'71-43-2',0,'benzene',482,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 483,4,'78-83-1',0,'2-methyl-1-propanol',483,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 484,4,'79-00-5',0,'1,1,2-trichloroethane',484,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 485,4,'79-01-6',0,'trichloroethene',485,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 486,4,'80-56-8',0,'alfa-pinene',486,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 487,4,'91-20-3',0,'naphtalene',487,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 488,4,'95-47-6',0,'o-xylene',488,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 489,4,'95-63-6',0,'trimethylbenzenes',489,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 490,4,'100-41-4',0,'ethylbenzene',490,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 491,4,'100-42-5',0,'styrene',491,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 492,4,'100-52-7',0,'benzaldehyde',492,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 493,4,'103-65-1',0,'propylbenzene',493,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 494,4,'104-76-7',0,'2-ethylhexanol',494,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 495,4,'108-38-3',0,'m(&p)-xylene',495,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 496,4,'108-88-3',0,'toluene',496,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 497,4,'108-95-2',0,'phenol',497,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 498,4,'110-54-3',0,'hexane',498,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 499,4,'110-82-7',0,'cyclohexane',499,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 500,4,'111-76-2',0,'ethanol, 2-butoxy-',500,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 501,4,'111-84-2',0,'nonane',501,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 502,4,'111-87-5',0,'1-octanol',502,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 503,4,'124-13-0',0,'octanal',503,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 504,4,'124-18-5',0,'decane',504,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 505,4,'127-18-4',0,'tetrachloroethene',505,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 506,4,'138-86-3',0,'d-limonene',506,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 507,4,'872-50-4',0,'2-pyrrolidinone, 1-methyl-',507,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 508,4,'1120-21-4',0,'undecane',508,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 509,4,'13466-78-9',0,'3-caren',509,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 510,4,'TVOC',0,'Toluene based total VOC',510,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 511,4,'67-66-3',0,'chloroform',511,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 512,4,'106-46-7',0,'1,4-dichlorobenzene',512,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 514,4,'56-23-5',0,'carbon tetrachloride',514,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 515,4,'75-09-2',0,'methylene chloride',515,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 517,4,'127-91-3',0,'b-pinene',517,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 520,4,'142-82-5',0,'n-heptane',520,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 521,4,'111-65-9',0,'n-octane',521,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 525,4,'112-40-3',0,'n-dodecane',525,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 526,4,'629-50-5',0,'n-tridecane',526,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 527,4,'629-59-4',0,'n-tetradecane',527,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 528,4,'629-62-9',0,'n-pentadecane',528,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 529,4,'107-83-5',0,'2-methylpentane',529,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 530,4,'96-14-0',0,'3-methylpentane',530,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 531,4,'565-59-3',0,'2,3-dimethylpentane',531,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 532,4,'591-76-4',0,'2-methylhexane',532,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 533,4,'589-34-4',0,'3-methylhexane',533,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 534,4,'592-27-8',0,'2-methylheptane',534,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 535,4,'589-81-1',0,'3-methylheptane',535,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 536,4,'96-37-7',0,'methylcyclopentane',536,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 537,4,'108-87-2',0,'methylcyclohexane',537,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 538,4,'526-73-8',0,'1,2,3-trimethylbenzene',538,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 540,4,'108-67-8',0,'1,3,5 trimethylbenzene',540,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 541,4,'4994-16-5',0,'4-phenylcyclohexene',541,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 542,4,'1,1,1-trichloroethane',0,'1,1,1-trichloroethane',542,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 545,4,'141-78-6',0,'ethylacetate',545,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 546,4,'123-86-4',0,'n-butylacetate',546,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 547,4,'78-93-3',0,'methyl ethyl ketone',547,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 548,4,'106-35-4',0,'3-heptatone',548,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 549,4,'93-58-3',0,'methyl benzoate',549,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 552,4,'123-51-3',0,'iso-amyl alcohol<sup>a</sup>',552,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 554,4,'67-63-0',0,'2-propanol<sup>a</sup>',554,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 555,4,'1634-04-4',0,'t-butyl methylether',555,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 556,4,'7439-92-1',0,'lead',556,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 557,4,'7440-38-2',0,'arsenic',557,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 558,4,'7440-43-9',0,'cadmium',558,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 559,4,'7440-39-3',0,'barium',559,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 560,4,'7440-47-3',0,'chrome',560,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 561,4,'7440-50-8',0,'copper',561,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 562,4,'7439-96-5',0,'manganese',562,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 563,4,'7440-02-0',0,'nickel',563,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 564,4,'7782-49-2',0,'selenium',564,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 565,4,'7440-62-2',0,'vanadium',565,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 566,4,'7440-66-6',0,'zinc',566,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 567,4,'71-55-6',0,'1,1,1-trichloroethane',567,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 568,4,'7439-97-6',0,'mercury',568,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 570,4,'60-27-5',0,'creatinine',570,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 571,4,'7429-90-5',0,'aluminium',571,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 572,4,'7440-70-2',0,'calcium',572,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 573,4,'7439-95-4',0,'magnesium',573,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 574,4,'7723-14-0',0,'phosphorus',574,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 575,4,'7440-24-6',0,'strontium',575,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 576,4,'7439-89-6',0,'iron',576,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 577,4,'7440-09-7',0,'potassium',577,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 578,4,'7440-23-5',0,'sodium',578,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 579,4,'58-89-9',0,'lindane',579,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 580,4,'52645-53-1',0,'permenthrine',580,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 581,4,'107-13-1',0,'acrylonitrile',581,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 582,4,'79-06-1',0,'acrylamide',582,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 589,4,'611-14-3',0,'1-ethyl 2methyl benzene',589,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 592,4,'109-66-0',0,'n-pentane',592,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 593,4,'7785-26-4',0,'alpha-pinene',593,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 594,4,'5989-27-5',0,'d-limonene',594,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 596,4,'106-99-0',0,'butadiene',596,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 597,4,'74-84-0',0,'ethane',597,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 598,4,'74-85-1',0,'ethylene',598,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 599,4,'74-86-2',0,'acetylene',599,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 600,4,'107-06-2',0,'1,2-dichloroethane',600,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 601,4,'106-42-3',0,'p-xylene',601,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 603,4,'98-82-8',0,'isopropylbenzene',603,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 604,4,'110-86-1',0,'pyridine',604,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 606,4,'109-06-8',0,'2-picoline',606,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 608,4,'108-99-6',0,'3-picoline',608,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 609,4,'108-89-4',0,'4-picoline',609,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 610,4,'104-51-8',0,'n-butylbenzene',610,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 611,4,'536-78-7',0,'3-ethylpyridine',611,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 613,4,'25551-13-7',0,'trimethylbenzene',613,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 618,4,'1336-36-3',0,'PCBs',618,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 619,4,'3547-04-4',0,'DDE',619,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 620,4,'118-74-1',0,'HCB',620,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 621,4,'5315-79-7',0,'1-hydroxypyrene',621,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 623,4,'1330-20-7',0,'xylenes',623,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 624,4,'37210-16-5',0,'CO2',624,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 625,4,'630-08-0',0,'CO',625,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 626,4,'54-11-5',0,'nicotine',626,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 628,4,'3588-17-8',0,'trans,trans-Muconic acid',628,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 629,4,'50-32-8',0,'benzo(a)pyrene',629,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 631,4,'590-86-3',0,'isovaleraldehyde',631,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 632,4,'123-38-6',0,'propionaldehyde',632,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 633,4,'123-72-8',0,'n-butyraldehyde',633,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 634,4,'75-07-0',0,'acetaldehyde',634,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 636,4,'50-00-0',0,'formaldehyde',636,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 637,4,'110-62-3',0,'valeraldehyde',637,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 638,4,'4170-30-3',0,'crotonaldehyde',638,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 639,22,'n',0,'Number of observations',639,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 640,22,'n_lt_LOQ',0,'Number of observations below level of quantitation',640,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 641,22,'F0.10',0,'Fractile 0.1',641,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 642,22,'F0.50',0,'Fractile 0.5',642,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 643,22,'F0.90',0,'Fractile 0.9',643,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 644,22,'F0.95',0,'Fractile 0.95',644,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 645,22,'Mean',0,'Arithmetic mean',645,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 646,22,'GeoMean',0,'Geometric mean',646,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 647,5,'ang',0,'Anglian Water ',647,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 648,5,'bou',0,'Bristol Water ',648,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 649,5,'brw',0,'Bournemouth & West hants ',649,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 650,5,'caw',0,'Cambridge Water ',650,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 651,5,'cho',0,'Cholderton Water ',651,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 652,5,'dcc',0,'Dee Valley Water ',652,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 653,5,'eas',0,'Welsh Water ',653,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 654,5,'ess',0,'Essex and Suffolk Water ',654,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 655,5,'fol',0,'Folkestone & Dover Water ',655,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 656,5,'har',0,'Hartlepool Water ',656,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 657,5,'mik',0,'Mid Kent Water ',657,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 658,5,'nor',0,'Northumbrian Water ',658,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 659,5,'nww',0,'Portsmouth Water ',659,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 660,5,'por',0,'Sutton & East Surrey Water ',660,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 661,5,'sea',0,'South East Water ',661,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 662,5,'sev',0,'Southern Water ',662,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 663,5,'sos',0,'South Staffordshire Water ',663,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 664,5,'sou',0,'Severn Trent Water ',664,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 665,5,'sww',0,'South West Water ',665,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 666,5,'teh',0,'Tendring Hundred Water ',666,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 667,5,'tha',0,'Thames Water ',667,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 668,5,'thr',0,'Three Valleys Water ',668,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 669,5,'wes',0,'United Utilties (North West Water) ',669,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 670,5,'wrx',0,'Wessex Water ',670,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 671,5,'yor',0,'Yorkshire Water',671,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 672,25,'BAU',0,'0.00000000000000',672,'Op_en1898','Recommendation for consumption of farmed salmon','-',1,1898,1, 673,25,'Restrict farmed salmon use',0,'0.00000000000000',673,'Op_en1898','Recommendation for consumption of farmed salmon','-',1,1898,1, 674,26,'BAU',0,'0.00000000000000',674,'Op_en1899','Pollutant concentration limits for fish feed','-',1,1899,1, 675,26,'More actions',0,'0.00000000000000',675,'Op_en1899','Pollutant concentration limits for fish feed','-',1,1899,1, 676,130,'Dieldrin',0,'0.00000000000000',676,'Op_en2705','Pollutant','-',6,2705,1, 677,130,'Toxaphene',0,'0.00000000000000',677,'Op_en2705','Pollutant','-',6,2705,1, 678,130,'Dioxin',0,'0.00000000000000',678,'Op_en2705','Pollutant','-',6,2705,1, 679,130,'PCB',0,'0.00000000000000',679,'Op_en2705','Pollutant','-',6,2705,1, 680,131,'Farmed salmon',0,'0.00000000000000',680,'Op_en2706','Salmon type','-',6,2706,1, 681,131,'Wild salmon',0,'0.00000000000000',681,'Op_en2706','Salmon type','-',6,2706,1, 682,131,'Market salmon',0,'0.00000000000000',682,'Op_en2706','Salmon type','-',6,2706,1, 685,133,'Cardiovascular',0,'0.00000000000000',685,'Op_en2707','Cause of death3','ICD-10',6,2707,1, 688,135,'2000',0,'0.00000000000000',688,'Op_en2708','Year3','year',6,2708,1, 689,185,'Male',0,'0.00000000000000',689,'Op_en2780','Sex','-',6,2780,1, 690,185,'Female',0,'0.00000000000000',690,'Op_en2780','Sex','-',6,2780,1, 691,186,'All causes',0,'AAA',691,'Op_en2779','Diagnosis1','-',6,2779,1, 692,186,'Infectious and parasitic diseases',0,'A00-B99',692,'Op_en2779','Diagnosis1','-',6,2779,1, 693,186,'Typhoid and paratyphoid fever',0,'A01',693,'Op_en2779','Diagnosis1','-',6,2779,1, 694,186,'Other intestinal infectious diseases',0,'A00, A02-A09',694,'Op_en2779','Diagnosis1','-',6,2779,1, 695,186,'Tuberculosis of respiratory system',0,'A15-A16',695,'Op_en2779','Diagnosis1','-',6,2779,1, 696,186,'Tuberculosis, other forms',0,'A17-A19',696,'Op_en2779','Diagnosis1','-',6,2779,1, 697,186,'Whooping cough',0,'A37',697,'Op_en2779','Diagnosis1','-',6,2779,1, 698,186,'Meningococcal infection',0,'A39',698,'Op_en2779','Diagnosis1','-',6,2779,1, 699,186,'Tetanus',0,'A35',699,'Op_en2779','Diagnosis1','-',6,2779,1, 700,186,'Septicaemia',0,'A40-A41',700,'Op_en2779','Diagnosis1','-',6,2779,1, 701,186,'Other bacterial diseases',0,'A20-A32, A36, A38, A42-49',701,'Op_en2779','Diagnosis1','-',6,2779,1, 702,186,'Measles',0,'B05',702,'Op_en2779','Diagnosis1','-',6,2779,1, 703,186,'HIV disease',0,'B20-B24',703,'Op_en2779','Diagnosis1','-',6,2779,1, 704,186,'Other viral diseases',0,'A70-A74, A80-B34, B05, B20-B24',704,'Op_en2779','Diagnosis1','-',6,2779,1, 705,186,'Malaria',0,'B50-B54',705,'Op_en2779','Diagnosis1','-',6,2779,1, 706,186,'Other arthropod-borne diseases',0,'A75-A79, B55-B57, B60, B64',706,'Op_en2779','Diagnosis1','-',6,2779,1, 707,186,'Sexually transmitted diseases',0,'A50-A64',707,'Op_en2779','Diagnosis1','-',6,2779,1, 708,186,'Other infectious and parasitic diseases',0,'A65-A69, B35-B49, B58, B59, B65-B99',708,'Op_en2779','Diagnosis1','-',6,2779,1, 709,186,'Malignant neoplasms',0,'C00-C97',709,'Op_en2779','Diagnosis1','-',6,2779,1, 710,186,'Malignant neoplasm of lip, oral cavity and pharynx',0,'C00-C14',710,'Op_en2779','Diagnosis1','-',6,2779,1, 711,186,'Malignant neoplasm of oesophagus',0,'C15',711,'Op_en2779','Diagnosis1','-',6,2779,1, 712,186,'Malignant neoplasm of stomach',0,'C16',712,'Op_en2779','Diagnosis1','-',6,2779,1, 713,186,'Malignant neoplasm of colon',0,'C18',713,'Op_en2779','Diagnosis1','-',6,2779,1, 714,186,'Malignant neoplasm of rectum, rectosigmoid junction and anus',0,'C19-C21',714,'Op_en2779','Diagnosis1','-',6,2779,1, 715,186,'Malignant neoplasm of liver',0,'C22',715,'Op_en2779','Diagnosis1','-',6,2779,1, 716,186,'Malignant neoplasm of larynx',0,'C32',716,'Op_en2779','Diagnosis1','-',6,2779,1, 717,186,'Malignant neoplasm of trachea, bronchus and lung',0,'C33-C34',717,'Op_en2779','Diagnosis1','-',6,2779,1, 718,186,'Malignant neoplasm of breast',0,'C50',718,'Op_en2779','Diagnosis1','-',6,2779,1, 719,186,'Malignant neoplasm of cervix uteri',0,'C53',719,'Op_en2779','Diagnosis1','-',6,2779,1, 720,186,'Malignant neoplasm of uterus, other and unspecified',0,'C54-C55',720,'Op_en2779','Diagnosis1','-',6,2779,1, 721,186,'Malignant neoplasm of prostate',0,'C61',721,'Op_en2779','Diagnosis1','-',6,2779,1, 722,186,'Malignant neoplasm of bladder',0,'C67',722,'Op_en2779','Diagnosis1','-',6,2779,1, 723,186,'Malignant neoplasm of other sites',0,'C17, C23-C31, C37-C49, C51, C52, C56-C60, C62-C66, C68-C80, C97',723,'Op_en2779','Diagnosis1','-',6,2779,1, 724,186,'Leukaemia',0,'C91-C95',724,'Op_en2779','Diagnosis1','-',6,2779,1, 725,186,'Other malignant neoplasms of lymphoid and haematopoietic and related tissue',0,'C81-C90, C96',725,'Op_en2779','Diagnosis1','-',6,2779,1, 726,186,'Benign neoplasm, other and unspecified neoplasm',0,'D00-D48',726,'Op_en2779','Diagnosis1','-',6,2779,1, 727,186,'Diabetes mellitus',0,'E10-E14',727,'Op_en2779','Diagnosis1','-',6,2779,1, 728,186,'Other endocrine and metabolic diseases',0,'E00-E07, E15-E34, E65-E68, E70-E88',728,'Op_en2779','Diagnosis1','-',6,2779,1, 729,186,'Malnutrition',0,'E41-E46',729,'Op_en2779','Diagnosis1','-',6,2779,1, 730,186,'Other nutritional deficiencies',0,'E40, E50-E64',730,'Op_en2779','Diagnosis1','-',6,2779,1, 731,186,'Anaemias',0,'D50-D64',731,'Op_en2779','Diagnosis1','-',6,2779,1, 732,186,'Other diseases of blood and blood-forming organs',0,'D65-D89',732,'Op_en2779','Diagnosis1','-',6,2779,1, 733,186,'Mental disorders',0,'F01-F99',733,'Op_en2779','Diagnosis1','-',6,2779,1, 734,186,'Meningitis',0,'G00, G03',734,'Op_en2779','Diagnosis1','-',6,2779,1, 735,186,'Multiple sclerosis',0,'G35',735,'Op_en2779','Diagnosis1','-',6,2779,1, 736,186,'Epilepsy',0,'G40-G41',736,'Op_en2779','Diagnosis1','-',6,2779,1, 737,186,'Other diseases of the nervous system and sense organs',0,'G04-G31, G36-G37, G43-H95',737,'Op_en2779','Diagnosis1','-',6,2779,1, 738,186,'Diseases of the circulatory system',0,'I00-I99',738,'Op_en2779','Diagnosis1','-',6,2779,1, 739,186,'Acute rheumatic fever',0,'I00-I02',739,'Op_en2779','Diagnosis1','-',6,2779,1, 740,186,'Chronic rheumatic heart disease',0,'I05-I09',740,'Op_en2779','Diagnosis1','-',6,2779,1, 741,186,'Hypertensive disease',0,'I10-I13',741,'Op_en2779','Diagnosis1','-',6,2779,1, 742,186,'Acute myocardial infarction',0,'I21, I22',742,'Op_en2779','Diagnosis1','-',6,2779,1, 743,186,'Other ischaemic heart diseases',0,'I20, I24, I25',743,'Op_en2779','Diagnosis1','-',6,2779,1, 744,186,'Diseases of pulmonary circulation and other forms of heart disease',0,'I26-I51',744,'Op_en2779','Diagnosis1','-',6,2779,1, 745,186,'Cerebrovascular disease',0,'I60-I69',745,'Op_en2779','Diagnosis1','-',6,2779,1, 746,186,'Atherosclerosis',0,'I70',746,'Op_en2779','Diagnosis1','-',6,2779,1, 747,186,'Embolism, thrombosis and other diseases of arteries, arterioles and capillaries',0,'I71-I78',747,'Op_en2779','Diagnosis1','-',6,2779,1, 748,186,'Phlebitis, thrombophlebitis, venous embolism and thrombosis',0,'I80-I82',748,'Op_en2779','Diagnosis1','-',6,2779,1, 749,186,'Other diseases of the circulatory system',0,'I83-I99',749,'Op_en2779','Diagnosis1','-',6,2779,1, 750,186,'Acute upper respiratory infection',0,'J00-J06',750,'Op_en2779','Diagnosis1','-',6,2779,1, 751,186,'Acute bronchitis and bronchiolitis',0,'J20-J21',751,'Op_en2779','Diagnosis1','-',6,2779,1, 752,186,'Pneumonia',0,'J12-J18',752,'Op_en2779','Diagnosis1','-',6,2779,1, 753,186,'Influenza',0,'J10-J11',753,'Op_en2779','Diagnosis1','-',6,2779,1, 754,186,'Bronchitis, chronic and unspecified, emphysema and asthma',0,'J40-J46',754,'Op_en2779','Diagnosis1','-',6,2779,1, 755,186,'Other diseases of the respiratory system',0,'J22, J30-J39, J47-J98',755,'Op_en2779','Diagnosis1','-',6,2779,1, 756,186,'Ulcer of stomach and duodenum',0,'K25-K27',756,'Op_en2779','Diagnosis1','-',6,2779,1, 757,186,'Appendicitis',0,'K35-K38',757,'Op_en2779','Diagnosis1','-',6,2779,1, 758,186,'Hernia of abdominal cavity and intestinal obstruction',0,'K40-K46,K56',758,'Op_en2779','Diagnosis1','-',6,2779,1, 759,186,'Chronic liver disease and cirrhosis',0,'K70,K73-K74,K76',759,'Op_en2779','Diagnosis1','-',6,2779,1, 760,186,'Other diseases of the digestive system',0,'K00-K22, K28-K31, K50-K55, K57-K66, K71, K72, K75, K80-K92',760,'Op_en2779','Diagnosis1','-',6,2779,1, 761,186,'Nephritis, nephrotic syndrome and nephrosis',0,'N00-N07, N13-N19',761,'Op_en2779','Diagnosis1','-',6,2779,1, 762,186,'Infections of kidney',0,'N10-N12',762,'Op_en2779','Diagnosis1','-',6,2779,1, 763,186,'Hyperplasia of prostate',0,'N40',763,'Op_en2779','Diagnosis1','-',6,2779,1, 764,186,'Other diseases of the genitourinary system',0,'N20-N39, N41-N98',764,'Op_en2779','Diagnosis1','-',6,2779,1, 765,186,'Abortion',0,'O00-O07',765,'Op_en2779','Diagnosis1','-',6,2779,1, 766,186,'Haemorrhage of pregnancy and childbirth',0,'O20, O46, O67, O72',766,'Op_en2779','Diagnosis1','-',6,2779,1, 767,186,'Toxaemia of pregnancy',0,'O13-O16, O21',767,'Op_en2779','Diagnosis1','-',6,2779,1, 768,186,'Complications of the puerperium',0,'O85-O92, A34',768,'Op_en2779','Diagnosis1','-',6,2779,1, 769,186,'Other direct obstetric causes',0,'O10-O12, O22-O75, O95-O97',769,'Op_en2779','Diagnosis1','-',6,2779,1, 770,186,'Indirect obstetric causes',0,'O98-O99',770,'Op_en2779','Diagnosis1','-',6,2779,1, 771,186,'Diseases of skin and subcutaneous tissue',0,'L00-L98',771,'Op_en2779','Diagnosis1','-',6,2779,1, 772,186,'Diseases of the musculoskeletal system and connective tissue',0,'M00-M99',772,'Op_en2779','Diagnosis1','-',6,2779,1, 773,186,'Spina bifida and hydrocephalus',0,'Q03,Q05',773,'Op_en2779','Diagnosis1','-',6,2779,1, 774,186,'Congenital anomalies of the circulatory system',0,'Q20-Q28',774,'Op_en2779','Diagnosis1','-',6,2779,1, 775,186,'Other congenital anomalies',0,'Q00-Q02, Q04, Q06-Q18, Q30-Q99',775,'Op_en2779','Diagnosis1','-',6,2779,1, 776,186,'Birth trauma',0,'P10-P15',776,'Op_en2779','Diagnosis1','-',6,2779,1, 777,186,'Other conditions originating in the perinatal period',0,'P00-P08, P20-P96, A33',777,'Op_en2779','Diagnosis1','-',6,2779,1, 778,186,'Senility',0,'R54',778,'Op_en2779','Diagnosis1','-',6,2779,1, 779,186,'Signs, symptoms and other ill-defined conditions',0,'R00-R53, R55-R99',779,'Op_en2779','Diagnosis1','-',6,2779,1, 780,186,'Accidents and adverse effects',0,'V01-X59, Y40-Y86, Y88',780,'Op_en2779','Diagnosis1','-',6,2779,1, 781,186,'Motor vehicle traffic accidents',0,'V02-V04, V09, V12-V14, V19-V79, V86-V89',781,'Op_en2779','Diagnosis1','-',6,2779,1, 782,186,'Other transport accidents',0,'V01, V05-V06, V10, V11, V15-V18, V80-V85, V90-V99',782,'Op_en2779','Diagnosis1','-',6,2779,1, 783,186,'Accidental poisoning',0,'X40-X49',783,'Op_en2779','Diagnosis1','-',6,2779,1, 784,186,'Accidental falls',0,'W00-W19',784,'Op_en2779','Diagnosis1','-',6,2779,1, 785,186,'Accidents caused by fire and flames',0,'X00-X09',785,'Op_en2779','Diagnosis1','-',6,2779,1, 786,186,'Accidental drowning and submersion',0,'W65-W74',786,'Op_en2779','Diagnosis1','-',6,2779,1, 787,186,'Accidents caused by machinery and by cutting and piercing instruments',0,'W24-W31',787,'Op_en2779','Diagnosis1','-',6,2779,1, 788,186,'Accidents caused by firearm missile',0,'W32-W34',788,'Op_en2779','Diagnosis1','-',6,2779,1, 789,186,'All other accidents, including late effects',0,'W20-W23, W35-W64, W75-W99, X10-X39, X50-X59, Y85, Y86',789,'Op_en2779','Diagnosis1','-',6,2779,1, 790,186,'Drugs, medicaments causing adverse effects in therapeutic use',0,'Y40-Y84, Y88',790,'Op_en2779','Diagnosis1','-',6,2779,1, 791,186,'Suicide and self- inflicted injury',0,'X60-X84',791,'Op_en2779','Diagnosis1','-',6,2779,1, 792,186,'Homicide and injury purposely inflicted by other persons',0,'X85-Y09',792,'Op_en2779','Diagnosis1','-',6,2779,1, 793,186,'Other external causes',0,'Y10-Y36, Y87, Y89',793,'Op_en2779','Diagnosis1','-',6,2779,1, 794,187,'Number',0,'0.00000000000000',794,'Op_en2784','Units1','-',6,2784,1, 795,187,'Number/100000 person-years',0,'0.00000000000000',795,'Op_en2784','Units1','-',6,2784,1, 796,188,'All ages',0,'0.00000000000000',796,'Op_en2781','Age group1','a',6,2781,1, 797,188,'< 1',0,'0.00000000000000',797,'Op_en2781','Age group1','a',6,2781,1, 798,188,'1-4',0,'0.00000000000000',798,'Op_en2781','Age group1','a',6,2781,1, 799,188,'5-14',0,'0.00000000000000',799,'Op_en2781','Age group1','a',6,2781,1, 800,188,'15-24',0,'0.00000000000000',800,'Op_en2781','Age group1','a',6,2781,1, 801,188,'25-34',0,'0.00000000000000',801,'Op_en2781','Age group1','a',6,2781,1, 802,188,'35-44',0,'0.00000000000000',802,'Op_en2781','Age group1','a',6,2781,1, 803,188,'45-54',0,'0.00000000000000',803,'Op_en2781','Age group1','a',6,2781,1, 804,188,'55-64',0,'0.00000000000000',804,'Op_en2781','Age group1','a',6,2781,1, 805,188,'65-74',0,'0.00000000000000',805,'Op_en2781','Age group1','a',6,2781,1, 806,188,'75+',0,'0.00000000000000',806,'Op_en2781','Age group1','a',6,2781,1, 807,188,'Age not specified',0,'0.00000000000000',807,'Op_en2781','Age group1','a',6,2781,1, 808,189,'Finland',0,'0.00000000000000',808,'Country1','Country1','-',6,2785,1, 809,193,'All',0,'0.00000000000000',809,'Age2','Age2','a',6,2812,1, 810,193,'0-64',0,'0.00000000000000',810,'Age2','Age2','a',6,2812,1, 811,193,'64+',0,'0.00000000000000',811,'Age2','Age2','a',6,2812,1, 812,194,'Austria',0,'0.00000000000000',812,'Country2','Country2','-',6,2813,1, 813,194,'Belgium',0,'0.00000000000000',813,'Country2','Country2','-',6,2813,1, 814,194,'Bulgaria',0,'0.00000000000000',814,'Country2','Country2','-',6,2813,1, 815,194,'Cyprus',0,'0.00000000000000',815,'Country2','Country2','-',6,2813,1, 816,194,'Czech Republic',0,'0.00000000000000',816,'Country2','Country2','-',6,2813,1, 817,194,'Denmark',0,'0.00000000000000',817,'Country2','Country2','-',6,2813,1, 818,194,'Estonia',0,'0.00000000000000',818,'Country2','Country2','-',6,2813,1, 819,194,'Finland',0,'0.00000000000000',819,'Country2','Country2','-',6,2813,1, 820,194,'France',0,'0.00000000000000',820,'Country2','Country2','-',6,2813,1, 821,194,'Germany',0,'0.00000000000000',821,'Country2','Country2','-',6,2813,1, 822,194,'Greece',0,'0.00000000000000',822,'Country2','Country2','-',6,2813,1, 823,194,'Hungary',0,'0.00000000000000',823,'Country2','Country2','-',6,2813,1, 824,194,'Ireland',0,'0.00000000000000',824,'Country2','Country2','-',6,2813,1, 825,194,'Italy',0,'0.00000000000000',825,'Country2','Country2','-',6,2813,1, 826,194,'Latvia',0,'0.00000000000000',826,'Country2','Country2','-',6,2813,1, 827,194,'Luxembourg',0,'0.00000000000000',827,'Country2','Country2','-',6,2813,1, 828,194,'Malta',0,'0.00000000000000',828,'Country2','Country2','-',6,2813,1, 829,194,'Netherlands',0,'0.00000000000000',829,'Country2','Country2','-',6,2813,1, 830,194,'Poland',0,'0.00000000000000',830,'Country2','Country2','-',6,2813,1, 831,194,'Portugal',0,'0.00000000000000',831,'Country2','Country2','-',6,2813,1, 832,194,'Romania',0,'0.00000000000000',832,'Country2','Country2','-',6,2813,1, 833,194,'Slovakia',0,'0.00000000000000',833,'Country2','Country2','-',6,2813,1, 834,194,'Slovenia',0,'0.00000000000000',834,'Country2','Country2','-',6,2813,1, 835,194,'Spain',0,'0.00000000000000',835,'Country2','Country2','-',6,2813,1, 836,194,'Sweden',0,'0.00000000000000',836,'Country2','Country2','-',6,2813,1, 837,194,'United Kingdom',0,'0.00000000000000',837,'Country2','Country2','-',6,2813,1, 838,194,'EU ',0,'0.00000000000000',838,'Country2','Country2','-',6,2813,1, 839,195,'1970',0,'0.00000000000000',839,'Year2','Year2','a',6,2814,1, 840,195,'1971',0,'0.00000000000000',840,'Year2','Year2','a',6,2814,1, 841,195,'1972',0,'0.00000000000000',841,'Year2','Year2','a',6,2814,1, 842,195,'1973',0,'0.00000000000000',842,'Year2','Year2','a',6,2814,1, 843,195,'1974',0,'0.00000000000000',843,'Year2','Year2','a',6,2814,1, 844,195,'1975',0,'0.00000000000000',844,'Year2','Year2','a',6,2814,1, 845,195,'1976',0,'0.00000000000000',845,'Year2','Year2','a',6,2814,1, 846,195,'1977',0,'0.00000000000000',846,'Year2','Year2','a',6,2814,1, 847,195,'1978',0,'0.00000000000000',847,'Year2','Year2','a',6,2814,1, 848,195,'1979',0,'0.00000000000000',848,'Year2','Year2','a',6,2814,1, 849,195,'1980',0,'0.00000000000000',849,'Year2','Year2','a',6,2814,1, 850,195,'1981',0,'0.00000000000000',850,'Year2','Year2','a',6,2814,1, 851,195,'1982',0,'0.00000000000000',851,'Year2','Year2','a',6,2814,1, 852,195,'1983',0,'0.00000000000000',852,'Year2','Year2','a',6,2814,1, 853,195,'1984',0,'0.00000000000000',853,'Year2','Year2','a',6,2814,1, 854,195,'1985',0,'0.00000000000000',854,'Year2','Year2','a',6,2814,1, 855,195,'1986',0,'0.00000000000000',855,'Year2','Year2','a',6,2814,1, 856,195,'1987',0,'0.00000000000000',856,'Year2','Year2','a',6,2814,1, 857,195,'1988',0,'0.00000000000000',857,'Year2','Year2','a',6,2814,1, 858,195,'1989',0,'0.00000000000000',858,'Year2','Year2','a',6,2814,1, 859,195,'1990',0,'0.00000000000000',859,'Year2','Year2','a',6,2814,1, 860,195,'1991',0,'0.00000000000000',860,'Year2','Year2','a',6,2814,1, 861,195,'1992',0,'0.00000000000000',861,'Year2','Year2','a',6,2814,1, 862,195,'1993',0,'0.00000000000000',862,'Year2','Year2','a',6,2814,1, 863,195,'1994',0,'0.00000000000000',863,'Year2','Year2','a',6,2814,1, 864,195,'1995',0,'0.00000000000000',864,'Year2','Year2','a',6,2814,1, 865,195,'1996',0,'0.00000000000000',865,'Year2','Year2','a',6,2814,1, 866,195,'1997',0,'0.00000000000000',866,'Year2','Year2','a',6,2814,1, 867,195,'1998',0,'0.00000000000000',867,'Year2','Year2','a',6,2814,1, 868,195,'1999',0,'0.00000000000000',868,'Year2','Year2','a',6,2814,1, 869,195,'2000',0,'0.00000000000000',869,'Year2','Year2','a',6,2814,1, 870,195,'2001',0,'0.00000000000000',870,'Year2','Year2','a',6,2814,1, 871,195,'2002',0,'0.00000000000000',871,'Year2','Year2','a',6,2814,1, 872,195,'2003',0,'0.00000000000000',872,'Year2','Year2','a',6,2814,1, 873,195,'2004',0,'0.00000000000000',873,'Year2','Year2','a',6,2814,1, 874,195,'2005',0,'0.00000000000000',874,'Year2','Year2','a',6,2814,1, 875,195,'2006',0,'0.00000000000000',875,'Year2','Year2','a',6,2814,1, 876,195,'2007',0,'0.00000000000000',876,'Year2','Year2','a',6,2814,1, 877,196,'Male',0,'0.00000000000000',877,'Sex2','Sex2','-',6,2815,1, 878,196,'Female',0,'0.00000000000000',878,'Sex2','Sex2','-',6,2815,1, 879,196,'All',0,'0.00000000000000',879,'Sex2','Sex2','-',6,2815,1, 883,207,'All causes',0,'-’',883,'Diagnosis2','Diagnosis2','ICD-10',6,2835,1, 884,207,'Infectious and parasitic diseases',0,'A00-B99’',884,'Diagnosis2','Diagnosis2','ICD-10',6,2835,1, 885,207,'Typhoid and paratyphoid fever',0,'A01’',885,'Diagnosis2','Diagnosis2','ICD-10',6,2835,1, 919,36,'ncd',1,'0.00000000000000',919,'Pollutant','Pollutant','-',2,2493,1, 920,36,'o31',2,'0.00000000000000',920,'Pollutant','Pollutant','-',2,2493,1, 921,36,'p10',3,'0.00000000000000',921,'Pollutant','Pollutant','-',2,2493,1, 922,36,'p25',4,'0.00000000000000',922,'Pollutant','Pollutant','-',2,2493,1, 923,36,'s10',5,'0.00000000000000',923,'Pollutant','Pollutant','-',2,2493,1, 924,36,'s25',6,'0.00000000000000',924,'Pollutant','Pollutant','-',2,2493,1, 925,36,'som',7,'0.00000000000000',925,'Pollutant','Pollutant','-',2,2493,1, 933,277,'AD',1,'0.00000000000000',933,'CountryID','Country identifier','-',6,2664,1, 934,278,'crops',1,'0.00000000000000',934,'Receptor','Receptor of the impact','-',6,2664,1, 935,278,'human',2,'0.00000000000000',935,'Receptor','Receptor of the impact','-',6,2664,1, 936,279,'total',1,'0.00000000000000',936,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 937,279,'potato',2,'0.00000000000000',937,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 938,279,'rice',3,'0.00000000000000',938,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 939,279,'sugar beet',4,'0.00000000000000',939,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 940,279,'sunflower seed',5,'0.00000000000000',940,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 941,279,'tobacco',6,'0.00000000000000',941,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 942,279,'wheat',7,'0.00000000000000',942,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 943,279,'adults_20',8,'0.00000000000000',943,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 944,279,'adults_27',9,'0.00000000000000',944,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 945,279,'adults_ab15',10,'0.00000000000000',945,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 946,279,'children_5_14',11,'0.00000000000000',946,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 947,279,'adults_15_64',12,'0.00000000000000',947,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 948,279,'adults_30',13,'0.00000000000000',948,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 949,279,'infants',14,'0.00000000000000',949,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 950,279,'adults_18_64',15,'0.00000000000000',950,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 951,279,'adults_65',16,'0.00000000000000',951,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 952,280,'add. fertil. needed [kg]',1,'0.00000000000000',952,'Impact','Impact in the receptor','-',6,2664,1, 953,280,'yield loss [dt]',2,'0.00000000000000',953,'Impact','Impact in the receptor','-',6,2664,1, 954,280,'Bronchodilator usage',3,'0.00000000000000',954,'Impact','Impact in the receptor','-',6,2664,1, 955,280,'chronic bronchitis',4,'0.00000000000000',955,'Impact','Impact in the receptor','-',6,2664,1, 956,280,'Lower resp. symptoms',5,'0.00000000000000',956,'Impact','Impact in the receptor','-',6,2664,1, 957,280,'Cardiac hosp.admissions',6,'0.00000000000000',957,'Impact','Impact in the receptor','-',6,2664,1, 958,280,'resp. hosp. admission',7,'0.00000000000000',958,'Impact','Impact in the receptor','-',6,2664,1, 959,280,'Restr. activity days',8,'0.00000000000000',959,'Impact','Impact in the receptor','-',6,2664,1, 960,280,'Work loss days',9,'0.00000000000000',960,'Impact','Impact in the receptor','-',6,2664,1, 961,280,'chronic’ YOLL',10,'0.00000000000000',961,'Impact','Impact in the receptor','-',6,2664,1, 962,280,'IncreasedInfantMort',11,'0.00000000000000',962,'Impact','Impact in the receptor','-',6,2664,1, 963,280,'Minor RAD',12,'0.00000000000000',963,'Impact','Impact in the receptor','-',6,2664,1, 964,280,'LRSwo cough',13,'0.00000000000000',964,'Impact','Impact in the receptor','-',6,2664,1, 965,280,'acute’ YOLL',14,'0.00000000000000',965,'Impact','Impact in the receptor','-',6,2664,1, 973,282,'Hornung, 1997',1,'0.00000000000000',973,'FunctionReference','Reference for the impact function','-',6,2664,1, 974,282,'Mills et al. 2003',2,'0.00000000000000',974,'FunctionReference','Reference for the impact function','-',6,2664,1, 975,282,'NEEDS_PPM10',3,'0.00000000000000',975,'FunctionReference','Reference for the impact function','-',6,2664,1, 976,282,'NEEDS_PPM25',4,'0.00000000000000',976,'FunctionReference','Reference for the impact function','-',6,2664,1, 977,282,'NEEDS_SIA10',5,'0.00000000000000',977,'FunctionReference','Reference for the impact function','-',6,2664,1, 978,282,'NEEDS_SIA25',6,'0.00000000000000',978,'FunctionReference','Reference for the impact function','-',6,2664,1, 979,282,'NEEDS_SOMO35',7,'0.00000000000000',979,'FunctionReference','Reference for the impact function','-',6,2664,1, 980,301,'Kiikoinen',1,'',980,'Municipality','Municipality in Finland','-',6,2664,1, 981,301,'Lavia',2,'',981,'Municipality','Municipality in Finland','-',6,2664,1, 982,301,'Mouhijärvi',3,'',982,'Municipality','Municipality in Finland','-',6,2664,1, 983,301,'Suodenniemi',4,'',983,'Municipality','Municipality in Finland','-',6,2664,1, 984,301,'Vammala',5,'',984,'Municipality','Municipality in Finland','-',6,2664,1, 985,301,'Äetsä',6,'',985,'Municipality','Municipality in Finland','-',6,2664,1, 986,302,'Kuorsumaanjärvi',1,'',986,'Lake','Lake in Finland','-',6,2664,1, 987,302,'Lavijärvi',2,'',987,'Lake','Lake in Finland','-',6,2664,1, 988,302,'Karhijärvi',3,'',988,'Lake','Lake in Finland','-',6,2664,1, 989,302,'Saarijärvi',4,'',989,'Lake','Lake in Finland','-',6,2664,1, 990,302,'Iso-Poikkelus',5,'',990,'Lake','Lake in Finland','-',6,2664,1, 991,302,'Pääjärvi',6,'',991,'Lake','Lake in Finland','-',6,2664,1, 992,302,'Kirkkojärvi',7,'',992,'Lake','Lake in Finland','-',6,2664,1, 993,302,'Kankaanjärvi',8,'',993,'Lake','Lake in Finland','-',6,2664,1, 994,302,'Valkeajärvi',9,'',994,'Lake','Lake in Finland','-',6,2664,1, 995,302,'Hurttionjärvi',10,'',995,'Lake','Lake in Finland','-',6,2664,1, 996,302,'Kulovesi',11,'',996,'Lake','Lake in Finland','-',6,2664,1, 997,302,'Rekujärvi',12,'',997,'Lake','Lake in Finland','-',6,2664,1, 998,302,'Pieni_Haukijärvi',13,'',998,'Lake','Lake in Finland','-',6,2664,1, 999,302,'Latvajärvi',14,'',999,'Lake','Lake in Finland','-',6,2664,1, 1000,302,'Murtojärvi',15,'',1000,'Lake','Lake in Finland','-',6,2664,1, 1001,302,'Miekkajärvi',16,'',1001,'Lake','Lake in Finland','-',6,2664,1, 1002,302,'Potkujärvi',17,'',1002,'Lake','Lake in Finland','-',6,2664,1, 1003,302,'Joutsijärvi',18,'',1003,'Lake','Lake in Finland','-',6,2664,1, 1004,302,'Rautavesi',19,'',1004,'Lake','Lake in Finland','-',6,2664,1, 1005,302,'Vähä-Poikelus',20,'',1005,'Lake','Lake in Finland','-',6,2664,1, 1006,302,'Iso-Lattio',21,'',1006,'Lake','Lake in Finland','-',6,2664,1, 1007,302,'Otajärvi',22,'',1007,'Lake','Lake in Finland','-',6,2664,1, 1008,302,'Ylinen/Ritajärvi',23,'',1008,'Lake','Lake in Finland','-',6,2664,1, 1009,302,'Houhajärvi',24,'',1009,'Lake','Lake in Finland','-',6,2664,1, 1010,302,'Alinen/Ritajärvi',25,'',1010,'Lake','Lake in Finland','-',6,2664,1, 1011,302,'Pitkäjärvi',26,'',1011,'Lake','Lake in Finland','-',6,2664,1, 1012,302,'Ylistenjärvi',27,'',1012,'Lake','Lake in Finland','-',6,2664,1, 1013,302,'Riippilänjärvi',28,'',1013,'Lake','Lake in Finland','-',6,2664,1, 1014,302,'Aurajärvi',29,'',1014,'Lake','Lake in Finland','-',6,2664,1, 1015,302,'Tyrisevä',30,'',1015,'Lake','Lake in Finland','-',6,2664,1, 1016,302,'Kivijärvi',31,'',1016,'Lake','Lake in Finland','-',6,2664,1, 1017,302,'Kiimajärvi',32,'',1017,'Lake','Lake in Finland','-',6,2664,1, 1018,303,'07.09.05',1,'',1018,'Date','Date of observation','date',6,2664,1, 1019,303,'13.09.05',2,'',1019,'Date','Date of observation','date',6,2664,1, 1020,303,'11.10.05',3,'',1020,'Date','Date of observation','date',6,2664,1, 1021,303,'18.07.05',4,'',1021,'Date','Date of observation','date',6,2664,1, 1022,303,'16.08.05',5,'',1022,'Date','Date of observation','date',6,2664,1, 1023,303,'06.09.05',6,'',1023,'Date','Date of observation','date',6,2664,1, 1024,303,'25.09.05',7,'',1024,'Date','Date of observation','date',6,2664,1, 1025,303,'23.08.05',8,'',1025,'Date','Date of observation','date',6,2664,1, 1026,303,'03.09.05',9,'',1026,'Date','Date of observation','date',6,2664,1, 1027,303,'04.07.05',10,'',1027,'Date','Date of observation','date',6,2664,1, 1028,303,'07.07.05',11,'',1028,'Date','Date of observation','date',6,2664,1, 1029,303,'28.07.05',12,'',1029,'Date','Date of observation','date',6,2664,1, 1030,303,'10.07.05',13,'',1030,'Date','Date of observation','date',6,2664,1, 1031,303,'11.07.05',14,'',1031,'Date','Date of observation','date',6,2664,1, 1032,303,'12.07.05',15,'',1032,'Date','Date of observation','date',6,2664,1, 1033,303,'19.07.05',16,'',1033,'Date','Date of observation','date',6,2664,1, 1034,303,'25.07.05',17,'',1034,'Date','Date of observation','date',6,2664,1, 1035,303,'27.07.05',18,'',1035,'Date','Date of observation','date',6,2664,1, 1036,303,'01.08.05',19,'',1036,'Date','Date of observation','date',6,2664,1, 1037,303,'02.08.05',20,'',1037,'Date','Date of observation','date',6,2664,1, 1038,303,'06.08.05',21,'',1038,'Date','Date of observation','date',6,2664,1, 1039,303,'09.08.05',22,'',1039,'Date','Date of observation','date',6,2664,1, 1040,303,'10.08.05',23,'',1040,'Date','Date of observation','date',6,2664,1, 1041,303,'17.08.05',24,'',1041,'Date','Date of observation','date',6,2664,1, 1042,303,'01.09.05',25,'',1042,'Date','Date of observation','date',6,2664,1, 1043,303,'27.08.05',26,'',1043,'Date','Date of observation','date',6,2664,1, 1044,303,'29.08.05',27,'',1044,'Date','Date of observation','date',6,2664,1, 1045,303,'12.09.05',28,'',1045,'Date','Date of observation','date',6,2664,1, 1046,303,'20.09.05',29,'',1046,'Date','Date of observation','date',6,2664,1, 1047,303,'28.09.05',30,'',1047,'Date','Date of observation','date',6,2664,1, 1048,303,'27.09.05',31,'',1048,'Date','Date of observation','date',6,2664,1, 1049,303,'02.10.05',32,'',1049,'Date','Date of observation','date',6,2664,1, 1050,303,'02.11.05',33,'',1050,'Date','Date of observation','date',6,2664,1, 1051,303,'03.10.05',34,'',1051,'Date','Date of observation','date',6,2664,1, 1052,303,'22.08.05',35,'',1052,'Date','Date of observation','date',6,2664,1, 1053,303,'30.08.05',36,'',1053,'Date','Date of observation','date',6,2664,1, 1054,303,'05.09.05',37,'',1054,'Date','Date of observation','date',6,2664,1, 1055,304,'Ahven',1,'',1055,'Fish','Fish species','-',6,0,5, 1056,304,'Hauki',2,'',1056,'Fish','Fish species','-',6,0,5, 1057,305,'12',1,'',1057,'Samplesize','Number of samples taken','#',6,2664,1, 1058,305,'3',2,'',1058,'Samplesize','Number of samples taken','#',6,2664,1, 1059,305,'4',3,'',1059,'Samplesize','Number of samples taken','#',6,2664,1, 1060,305,'6',4,'',1060,'Samplesize','Number of samples taken','#',6,2664,1, 1061,305,'1',5,'',1061,'Samplesize','Number of samples taken','#',6,2664,1, 1062,305,'25',6,'',1062,'Samplesize','Number of samples taken','#',6,2664,1, 1063,305,'26',7,'',1063,'Samplesize','Number of samples taken','#',6,2664,1, 1064,305,'19',8,'',1064,'Samplesize','Number of samples taken','#',6,2664,1, 1065,305,'20',9,'',1065,'Samplesize','Number of samples taken','#',6,2664,1, 1066,305,'24',10,'',1066,'Samplesize','Number of samples taken','#',6,2664,1, 1067,305,'32',11,'',1067,'Samplesize','Number of samples taken','#',6,2664,1, 1068,305,'34',12,'',1068,'Samplesize','Number of samples taken','#',6,2664,1, 1069,305,'2',13,'',1069,'Samplesize','Number of samples taken','#',6,2664,1, 1070,305,'15',14,'',1070,'Samplesize','Number of samples taken','#',6,2664,1, 1071,305,'11',15,'',1071,'Samplesize','Number of samples taken','#',6,2664,1, 1072,305,'18',16,'',1072,'Samplesize','Number of samples taken','#',6,2664,1, 1073,305,'13',17,'',1073,'Samplesize','Number of samples taken','#',6,2664,1, 1074,305,'5',18,'',1074,'Samplesize','Number of samples taken','#',6,2664,1, 1075,305,'31',19,'',1075,'Samplesize','Number of samples taken','#',6,2664,1, 1076,305,'40',20,'',1076,'Samplesize','Number of samples taken','#',6,2664,1, 1077,305,'39',21,'',1077,'Samplesize','Number of samples taken','#',6,2664,1, 1078,305,'28',22,'',1078,'Samplesize','Number of samples taken','#',6,2664,1, 1079,305,'22',23,'',1079,'Samplesize','Number of samples taken','#',6,2664,1, 1080,305,'21',24,'',1080,'Samplesize','Number of samples taken','#',6,2664,1, 1081,305,'23',25,'',1081,'Samplesize','Number of samples taken','#',6,2664,1, 1082,305,'8',26,'',1082,'Samplesize','Number of samples taken','#',6,2664,1, 1083,305,'45',27,'',1083,'Samplesize','Number of samples taken','#',6,2664,1, 1084,305,'17',28,'',1084,'Samplesize','Number of samples taken','#',6,2664,1, 1085,305,'37',29,'',1085,'Samplesize','Number of samples taken','#',6,2664,1, 1086,305,'16',30,'',1086,'Samplesize','Number of samples taken','#',6,2664,1, 1087,305,'27',31,'',1087,'Samplesize','Number of samples taken','#',6,2664,1, 1088,305,'35',32,'',1088,'Samplesize','Number of samples taken','#',6,2664,1, 1089,305,'33',33,'',1089,'Samplesize','Number of samples taken','#',6,2664,1, 1090,305,'48',34,'',1090,'Samplesize','Number of samples taken','#',6,2664,1, 1091,305,'7',35,'',1091,'Samplesize','Number of samples taken','#',6,2664,1, 1092,306,'21',1,'',1092,'Minsize','Minimum size','cm',6,2664,1, 1093,306,'31',2,'',1093,'Minsize','Minimum size','cm',6,2664,1, 1094,306,'50',3,'',1094,'Minsize','Minimum size','cm',6,2664,1, 1095,306,'25',4,'',1095,'Minsize','Minimum size','cm',6,2664,1, 1096,306,'56',5,'',1096,'Minsize','Minimum size','cm',6,2664,1, 1097,306,'10',6,'',1097,'Minsize','Minimum size','cm',6,2664,1, 1098,306,'24',7,'',1098,'Minsize','Minimum size','cm',6,2664,1, 1099,306,'14',8,'',1099,'Minsize','Minimum size','cm',6,2664,1, 1100,306,'32',9,'',1100,'Minsize','Minimum size','cm',6,2664,1, 1101,306,'11',10,'',1101,'Minsize','Minimum size','cm',6,2664,1, 1102,306,'17',11,'',1102,'Minsize','Minimum size','cm',6,2664,1, 1103,306,'12',12,'',1103,'Minsize','Minimum size','cm',6,2664,1, 1104,306,'15',13,'',1104,'Minsize','Minimum size','cm',6,2664,1, 1105,306,'9',14,'',1105,'Minsize','Minimum size','cm',6,2664,1, 1106,306,'8',15,'',1106,'Minsize','Minimum size','cm',6,2664,1, 1107,306,'165',16,'',1107,'Minsize','Minimum size','cm',6,2664,1, 1108,306,'16',17,'',1108,'Minsize','Minimum size','cm',6,2664,1, 1109,306,'37',18,'',1109,'Minsize','Minimum size','cm',6,2664,1, 1110,306,'72',19,'',1110,'Minsize','Minimum size','cm',6,2664,1, 1111,306,'19',20,'',1111,'Minsize','Minimum size','cm',6,2664,1, 1112,306,'27',21,'',1112,'Minsize','Minimum size','cm',6,2664,1, 1113,306,'13',22,'',1113,'Minsize','Minimum size','cm',6,2664,1, 1114,306,'42',23,'',1114,'Minsize','Minimum size','cm',6,2664,1, 1115,306,'7',24,'',1115,'Minsize','Minimum size','cm',6,2664,1, 1116,306,'49',25,'',1116,'Minsize','Minimum size','cm',6,2664,1, 1117,306,'44',26,'',1117,'Minsize','Minimum size','cm',6,2664,1, 1118,306,'20',27,'',1118,'Minsize','Minimum size','cm',6,2664,1, 1119,306,'46',28,'',1119,'Minsize','Minimum size','cm',6,2664,1, 1120,306,'36',29,'',1120,'Minsize','Minimum size','cm',6,2664,1, 1121,306,'39',30,'',1121,'Minsize','Minimum size','cm',6,2664,1, 1122,306,'29',31,'',1122,'Minsize','Minimum size','cm',6,2664,1, 1123,307,'30',1,'',1123,'Maxsize','Maximum size','cm',6,2664,1, 1124,307,'41',2,'',1124,'Maxsize','Maximum size','cm',6,2664,1, 1125,307,'55',3,'',1125,'Maxsize','Maximum size','cm',6,2664,1, 1126,307,'56',4,'',1126,'Maxsize','Maximum size','cm',6,2664,1, 1127,307,'15',5,'',1127,'Maxsize','Maximum size','cm',6,2664,1, 1128,307,'31',6,'',1128,'Maxsize','Maximum size','cm',6,2664,1, 1129,307,'12',7,'',1129,'Maxsize','Maximum size','cm',6,2664,1, 1130,307,'20',8,'',1130,'Maxsize','Maximum size','cm',6,2664,1, 1131,307,'54',9,'',1131,'Maxsize','Maximum size','cm',6,2664,1, 1132,307,'16',10,'',1132,'Maxsize','Maximum size','cm',6,2664,1, 1133,307,'21',11,'',1133,'Maxsize','Maximum size','cm',6,2664,1, 1134,307,'25',12,'',1134,'Maxsize','Maximum size','cm',6,2664,1, 1135,307,'19',13,'',1135,'Maxsize','Maximum size','cm',6,2664,1, 1136,307,'70',14,'',1136,'Maxsize','Maximum size','cm',6,2664,1, 1137,307,'23',15,'',1137,'Maxsize','Maximum size','cm',6,2664,1, 1138,307,'135',16,'',1138,'Maxsize','Maximum size','cm',6,2664,1, 1139,307,'22',17,'',1139,'Maxsize','Maximum size','cm',6,2664,1, 1140,307,'49',18,'',1140,'Maxsize','Maximum size','cm',6,2664,1, 1141,307,'85',19,'',1141,'Maxsize','Maximum size','cm',6,2664,1, 1142,307,'17',20,'',1142,'Maxsize','Maximum size','cm',6,2664,1, 1143,307,'48',21,'',1143,'Maxsize','Maximum size','cm',6,2664,1, 1144,307,'45',22,'',1144,'Maxsize','Maximum size','cm',6,2664,1, 1145,307,'13',23,'',1145,'Maxsize','Maximum size','cm',6,2664,1, 1146,307,'14',24,'',1146,'Maxsize','Maximum size','cm',6,2664,1, 1147,307,'44',25,'',1147,'Maxsize','Maximum size','cm',6,2664,1, 1148,307,'57',26,'',1148,'Maxsize','Maximum size','cm',6,2664,1, 1149,307,'24',27,'',1149,'Maxsize','Maximum size','cm',6,2664,1, 1150,307,'29',28,'',1150,'Maxsize','Maximum size','cm',6,2664,1, 1151,307,'46',29,'',1151,'Maxsize','Maximum size','cm',6,2664,1, 1152,307,'39',30,'',1152,'Maxsize','Maximum size','cm',6,2664,1, 1153,307,'50',31,'',1153,'Maxsize','Maximum size','cm',6,2664,1, 1154,307,'38',32,'',1154,'Maxsize','Maximum size','cm',6,2664,1, 1155,307,'58',33,'',1155,'Maxsize','Maximum size','cm',6,2664,1, 1156,307,'64',34,'',1156,'Maxsize','Maximum size','cm',6,2664,1, 1157,307,'11',35,'',1157,'Maxsize','Maximum size','cm',6,2664,1, 1158,307,'32',36,'',1158,'Maxsize','Maximum size','cm',6,2664,1, 1159,307,'67',37,'',1159,'Maxsize','Maximum size','cm',6,2664,1, 1160,308,'28',1,'',1160,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1161,308,'27',2,'',1161,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1162,308,'25',3,'',1162,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1163,308,'32',4,'',1163,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1164,308,'41',5,'',1164,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1165,308,'18',6,'',1165,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1166,308,'34',7,'',1166,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1167,308,'358',8,'',1167,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1168,308,'391',9,'',1168,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1169,308,'996',10,'',1169,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1170,308,'419',11,'',1170,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1171,308,'373',12,'',1171,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1172,308,'560',13,'',1172,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1173,308,'696',14,'',1173,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1174,308,'9',15,'',1174,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1175,308,'4',16,'',1175,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1176,308,'<15',17,'',1176,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1177,308,'290',18,'',1177,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1178,308,'451',19,'',1178,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1179,308,'496',20,'',1179,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1180,308,'1310',21,'',1180,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1181,308,'1800',22,'',1181,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1182,308,'1420',23,'',1182,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1183,308,'949',24,'',1183,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1184,308,'1940',25,'',1184,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1185,308,'124',26,'',1185,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1186,308,'1070',27,'',1186,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1187,308,'1410',28,'',1187,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1188,308,'1560',29,'',1188,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1189,308,'250',30,'',1189,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1190,308,'304',31,'',1190,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1191,308,'723',32,'',1191,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1192,308,'717',33,'',1192,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1193,308,'788',34,'',1193,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1194,308,'273',35,'',1194,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1195,308,'163',36,'',1195,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1196,308,'136',37,'',1196,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1197,308,'172',38,'',1197,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1198,308,'500',39,'',1198,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1199,308,'472',40,'',1199,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1200,308,'425',41,'',1200,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1201,308,'572',42,'',1201,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1202,308,'66',43,'',1202,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1203,308,'90',44,'',1203,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1204,308,'412',45,'',1204,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1205,308,'240',46,'',1205,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1206,308,'261',47,'',1206,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1207,308,'287',48,'',1207,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1208,308,'302',49,'',1208,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1209,308,'345',50,'',1209,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1210,308,'237',51,'',1210,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1211,308,'80',52,'',1211,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1212,308,'53',53,'',1212,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1213,308,'252',54,'',1213,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1214,308,'532',55,'',1214,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1215,308,'1150',56,'',1215,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1216,308,'158',57,'',1216,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1217,308,'211',58,'',1217,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1218,308,'355',59,'',1218,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1219,308,'889',60,'',1219,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1220,308,'37',61,'',1220,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1221,308,'56',62,'',1221,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1222,308,'101',63,'',1222,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1223,308,'146',64,'',1223,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1224,308,'149',65,'',1224,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1225,308,'193',66,'',1225,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1226,308,'15',67,'',1226,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1227,308,'39',68,'',1227,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1228,308,'1350',69,'',1228,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1229,308,'1030',70,'',1229,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1230,308,'48',71,'',1230,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1231,308,'116',72,'',1231,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1232,308,'130',73,'',1232,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1233,308,'31',74,'',1233,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1234,308,'63',75,'',1234,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1235,308,'40',76,'',1235,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 1236,309,'33',1,'',1236,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1237,309,'32',2,'',1237,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1238,309,'36',3,'',1238,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1239,309,'35',4,'',1239,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1240,309,'14',5,'',1240,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1241,309,'31',6,'',1241,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1242,309,'357',7,'',1242,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1243,309,'390',8,'',1243,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1244,309,'1075',9,'',1244,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1245,309,'422',10,'',1245,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1246,309,'367',11,'',1246,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1247,309,'554',12,'',1247,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1248,309,'724',13,'',1248,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1249,309,'3',14,'',1249,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1250,309,'5',15,'',1250,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1251,309,'6',16,'',1251,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1252,309,'286',17,'',1252,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1253,309,'482',18,'',1253,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1254,309,'512',19,'',1254,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1255,309,'1266',20,'',1255,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1256,309,'1709',21,'',1256,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1257,309,'1416',22,'',1257,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1258,309,'945',23,'',1258,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1259,309,'1852',24,'',1259,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1260,309,'123',25,'',1260,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1261,309,'1066',26,'',1261,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1262,309,'1437',27,'',1262,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1263,309,'1587',28,'',1263,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1264,309,'262',29,'',1264,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1265,309,'303',30,'',1265,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1266,309,'721',31,'',1266,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1267,309,'737',32,'',1267,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1268,309,'811',33,'',1268,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1269,309,'282',34,'',1269,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1270,309,'172',35,'',1270,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1271,309,'146',36,'',1271,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1272,309,'178',37,'',1272,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1273,309,'500',38,'',1273,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1274,309,'444',39,'',1274,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1275,309,'575',40,'',1275,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1276,309,'71',41,'',1276,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1277,309,'92',42,'',1277,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1278,309,'435',43,'',1278,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1279,309,'257',44,'',1279,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1280,309,'275',45,'',1280,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1281,309,'271',46,'',1281,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1282,309,'307',47,'',1282,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1283,309,'354',48,'',1283,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 1361,54,'Samplesize',1,' ',1361,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1362,54,'Minsize',2,' ',1362,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1363,54,'Maxsize',3,' ',1363,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1364,54,'137Cs_Bq/kgtpVammala',4,' ',1364,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1365,54,'137Cs_Bq/kgtpSTUK',5,' ',1365,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1366,54,'Hg_mg/kgtp',6,' ',1366,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1367,48,'All',1,' ',1367,'Age','Age','a',2,2497,1, 1368,48,'-64',2,' ',1368,'Age','Age','a',2,2497,1, 1369,48,'65+',3,' ',1369,'Age','Age','a',2,2497,1, 1370,422,'Austria',1,' ',1370,'Country','Country of observation','-',6,2664,1, 1371,422,'Belgium',2,' ',1371,'Country','Country of observation','-',6,2664,1, 1372,422,'Bulgaria',3,' ',1372,'Country','Country of observation','-',6,2664,1, 1373,422,'Cyprus',4,' ',1373,'Country','Country of observation','-',6,2664,1, 1374,422,'Czech Republic',5,' ',1374,'Country','Country of observation','-',6,2664,1, 1375,422,'Denmark',6,' ',1375,'Country','Country of observation','-',6,2664,1, 1376,422,'Estonia',7,' ',1376,'Country','Country of observation','-',6,2664,1, 1377,422,'Finland',8,' ',1377,'Country','Country of observation','-',6,2664,1, 1378,422,'France',9,' ',1378,'Country','Country of observation','-',6,2664,1, 1379,422,'Germany',10,' ',1379,'Country','Country of observation','-',6,2664,1, 1380,422,'Greece',11,' ',1380,'Country','Country of observation','-',6,2664,1, 1381,422,'Hungary',12,' ',1381,'Country','Country of observation','-',6,2664,1, 1382,422,'Ireland',13,' ',1382,'Country','Country of observation','-',6,2664,1, 1383,422,'Italy',14,' ',1383,'Country','Country of observation','-',6,2664,1, 1384,422,'Latvia',15,' ',1384,'Country','Country of observation','-',6,2664,1, 1385,422,'Luxembourg',16,' ',1385,'Country','Country of observation','-',6,2664,1, 1386,422,'Malta',17,' ',1386,'Country','Country of observation','-',6,2664,1, 1387,422,'Netherlands',18,' ',1387,'Country','Country of observation','-',6,2664,1, 1388,422,'Poland',19,' ',1388,'Country','Country of observation','-',6,2664,1, 1389,422,'Portugal',20,' ',1389,'Country','Country of observation','-',6,2664,1, 1390,422,'Romania',21,' ',1390,'Country','Country of observation','-',6,2664,1, 1391,422,'Slovakia',22,' ',1391,'Country','Country of observation','-',6,2664,1, 1392,422,'Slovenia',23,' ',1392,'Country','Country of observation','-',6,2664,1, 1393,422,'Spain',24,' ',1393,'Country','Country of observation','-',6,2664,1, 1394,422,'Sweden',25,' ',1394,'Country','Country of observation','-',6,2664,1, 1395,422,'United Kingdom',26,' ',1395,'Country','Country of observation','-',6,2664,1, 1396,422,'EU ',27,' ',1396,'Country','Country of observation','-',6,2664,1, 1397,423,'1970',1,' ',1397,'Year','Year of observation','a',6,2664,1, 1398,423,'1971',2,' ',1398,'Year','Year of observation','a',6,2664,1, 1399,423,'1972',3,' ',1399,'Year','Year of observation','a',6,2664,1, 1400,423,'1973',4,' ',1400,'Year','Year of observation','a',6,2664,1, 1401,423,'1974',5,' ',1401,'Year','Year of observation','a',6,2664,1, 1402,423,'1975',6,' ',1402,'Year','Year of observation','a',6,2664,1, 1403,423,'1976',7,' ',1403,'Year','Year of observation','a',6,2664,1, 1404,423,'1977',8,' ',1404,'Year','Year of observation','a',6,2664,1, 1405,423,'1978',9,' ',1405,'Year','Year of observation','a',6,2664,1, 1406,423,'1979',10,' ',1406,'Year','Year of observation','a',6,2664,1, 1407,423,'1980',11,' ',1407,'Year','Year of observation','a',6,2664,1, 1408,423,'1981',12,' ',1408,'Year','Year of observation','a',6,2664,1, 1409,423,'1982',13,' ',1409,'Year','Year of observation','a',6,2664,1, 1410,423,'1983',14,' ',1410,'Year','Year of observation','a',6,2664,1, 1411,423,'1984',15,' ',1411,'Year','Year of observation','a',6,2664,1, 1412,423,'1985',16,' ',1412,'Year','Year of observation','a',6,2664,1, 1413,423,'1986',17,' ',1413,'Year','Year of observation','a',6,2664,1, 1414,423,'1987',18,' ',1414,'Year','Year of observation','a',6,2664,1, 1415,423,'1988',19,' ',1415,'Year','Year of observation','a',6,2664,1, 1416,423,'1989',20,' ',1416,'Year','Year of observation','a',6,2664,1, 1417,423,'1990',21,' ',1417,'Year','Year of observation','a',6,2664,1, 1418,423,'1991',22,' ',1418,'Year','Year of observation','a',6,2664,1, 1419,423,'1992',23,' ',1419,'Year','Year of observation','a',6,2664,1, 1420,423,'1993',24,' ',1420,'Year','Year of observation','a',6,2664,1, 1421,423,'1994',25,' ',1421,'Year','Year of observation','a',6,2664,1, 1422,423,'1995',26,' ',1422,'Year','Year of observation','a',6,2664,1, 1423,423,'1996',27,' ',1423,'Year','Year of observation','a',6,2664,1, 1424,423,'1997',28,' ',1424,'Year','Year of observation','a',6,2664,1, 1425,423,'1998',29,' ',1425,'Year','Year of observation','a',6,2664,1, 1426,423,'1999',30,' ',1426,'Year','Year of observation','a',6,2664,1, 1427,423,'2000',31,' ',1427,'Year','Year of observation','a',6,2664,1, 1428,423,'2001',32,' ',1428,'Year','Year of observation','a',6,2664,1, 1429,423,'2002',33,' ',1429,'Year','Year of observation','a',6,2664,1, 1430,423,'2003',34,' ',1430,'Year','Year of observation','a',6,2664,1, 1431,423,'2004',35,' ',1431,'Year','Year of observation','a',6,2664,1, 1432,423,'2005',36,' ',1432,'Year','Year of observation','a',6,2664,1, 1433,423,'2006',37,' ',1433,'Year','Year of observation','a',6,2664,1, 1434,423,'2007',38,' ',1434,'Year','Year of observation','a',6,2664,1, 1435,424,'Male',1,' ',1435,'Sex','Sex of a person','-',6,2664,1, 1436,424,'Female',2,' ',1436,'Sex','Sex of a person','-',6,2664,1, 1437,424,'All',3,' ',1437,'Sex','Sex of a person','-',6,2664,1, 1438,54,'Morbidity',1,' ',1438,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1455,422,'Liechtenstein',17,'',1455,'Country','Country of observation','-',6,2664,1, 1456,422,'Lithuania',18,'',1456,'Country','Country of observation','-',6,2664,1, 1467,480,'1. Combustion installations',1,'',1467,'CITL sector','CITL sector','-',6,2664,1, 1468,480,'2. Mineral oil refineries',2,'',1468,'CITL sector','CITL sector','-',6,2664,1, 1469,480,'3. Coke ovens',3,'',1469,'CITL sector','CITL sector','-',6,2664,1, 1470,480,'4. Metal ore roasting or sintering',4,'',1470,'CITL sector','CITL sector','-',6,2664,1, 1471,480,'5. Pig iron or steel',5,'',1471,'CITL sector','CITL sector','-',6,2664,1, 1472,480,'6. Cement clinker or lime',6,'',1472,'CITL sector','CITL sector','-',6,2664,1, 1473,480,'7. Glass including glass fibre',7,'',1473,'CITL sector','CITL sector','-',6,2664,1, 1474,480,'8. Ceramic products by firing',8,'',1474,'CITL sector','CITL sector','-',6,2664,1, 1475,480,'9. Pulp, paper and board',9,'',1475,'CITL sector','CITL sector','-',6,2664,1, 1476,480,'99. Other activity opted-in',10,'',1476,'CITL sector','CITL sector','-',6,2664,1, 1477,481,'Allocated allowances',1,'',1477,'CITL_information','CITL information','-',6,2664,1, 1478,481,'Surrendered allowances',2,'',1478,'CITL_information','CITL information','-',6,2664,1, 1479,481,'Verified emissions',3,'',1479,'CITL_information','CITL information','-',6,2664,1, 1483,423,'2008',4,'',1483,'Year','Year of observation','a',6,2664,1, 1484,54,'ETS data',1,'',1484,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1488,493,'All causes',1,'',1488,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1489,493,'Infectious and parasitic diseases',2,'',1489,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1490,493,'Typhoid and paratyphoid fever',3,'',1490,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1491,493,'Other intestinal infectious diseases',4,'',1491,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1492,493,'Tuberculosis of respiratory system',5,'',1492,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1493,493,'Tuberculosis other forms',6,'',1493,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1494,493,'Whooping cough',7,'',1494,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1495,493,'Meningococcal infection',8,'',1495,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1496,493,'Tetanus',9,'',1496,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1497,493,'Septicaemia',10,'',1497,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1498,493,'Other bacterial diseases',11,'',1498,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1499,493,'Measles',12,'',1499,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1500,493,'HIV disease',13,'',1500,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1501,493,'Other viral diseases',14,'',1501,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1502,493,'Malaria',15,'',1502,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1503,493,'Other arthropod-borne diseases',16,'',1503,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1504,493,'Sexually transmitted diseases',17,'',1504,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1505,493,'Other infectious and parasitic diseases',18,'',1505,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1506,493,'Malignant neoplasms',19,'',1506,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1507,493,'Malignant neoplasm of lip oral cavity and pharynx',20,'',1507,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1508,493,'Malignant neoplasm of oesophagus',21,'',1508,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1509,493,'Malignant neoplasm of stomach',22,'',1509,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1510,493,'Malignant neoplasm of colon',23,'',1510,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1511,493,'Malignant neoplasm of rectum rectosigmoid junction and anus',24,'',1511,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1512,493,'Malignant neoplasm of liver',25,'',1512,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1513,493,'Malignant neoplasm of larynx',26,'',1513,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1514,493,'Malignant neoplasm of trachea bronchus and lung',27,'',1514,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1515,493,'Malignant neoplasm of breast',28,'',1515,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1516,493,'Malignant neoplasm of cervix uteri',29,'',1516,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1517,493,'Malignant neoplasm of uterus other and unspecified',30,'',1517,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1518,493,'Malignant neoplasm of prostate',31,'',1518,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1519,493,'Malignant neoplasm of bladder',32,'',1519,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1520,493,'Malignant neoplasm of other sites',33,'',1520,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1521,493,'Leukaemia',34,'',1521,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1522,493,'Other malignant neoplasms of lymphoid and haematopoietic and related tissue',35,'',1522,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1523,493,'Benign neoplasm other and unspecified neoplasm',36,'',1523,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1524,493,'Diabetes mellitus',37,'',1524,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1525,493,'Other endocrine and metabolic diseases',38,'',1525,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1526,493,'Malnutrition',39,'',1526,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1527,493,'Other nutritional deficiencies',40,'',1527,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1528,493,'Anaemias',41,'',1528,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1529,493,'Other diseases of blood and blood-forming organs',42,'',1529,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1530,493,'Mental disorders',43,'',1530,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1531,493,'Meningitis',44,'',1531,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1532,493,'Multiple sclerosis',45,'',1532,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1533,493,'Epilepsy',46,'',1533,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1534,493,'Other diseases of the nervous system and sense organs',47,'',1534,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1535,493,'Diseases of the circulatory system',48,'',1535,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1536,493,'Acute rheumatic fever',49,'',1536,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1537,493,'Chronic rheumatic heart disease',50,'',1537,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1538,493,'Hypertensive disease',51,'',1538,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1539,493,'Acute myocardial infarction',52,'',1539,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1540,493,'Other ischaemic heart diseases',53,'',1540,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1541,493,'Diseases of pulmonary circulation and other forms of heart disease',54,'',1541,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1542,493,'Cerebrovascular disease',55,'',1542,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1543,493,'Atherosclerosis',56,'',1543,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1544,493,'Embolism thrombosis and other diseases of arteries arterioles and capillaries',57,'',1544,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1545,493,'Phlebitis thrombophlebitis venous embolism and thrombosis',58,'',1545,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1546,493,'Other diseases of the circulatory system',59,'',1546,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1547,493,'Acute upper respiratory infection',60,'',1547,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1548,493,'Acute bronchitis and bronchiolitis',61,'',1548,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1549,493,'Pneumonia',62,'',1549,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1550,493,'Influenza',63,'',1550,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1551,493,'Bronchitis chronic and unspecified emphysema and asthma',64,'',1551,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1552,493,'Other diseases of the respiratory system',65,'',1552,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1553,493,'Ulcer of stomach and duodenum',66,'',1553,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1554,493,'Appendicitis',67,'',1554,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1555,493,'Hernia of abdominal cavity and intestinal obstruction',68,'',1555,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1556,493,'Chronic liver disease and cirrhosis',69,'',1556,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1557,493,'Other diseases of the digestive system',70,'',1557,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1558,493,'Nephritis nephrotic syndrome and nephrosis',71,'',1558,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1559,493,'Infections of kidney',72,'',1559,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1560,493,'Hyperplasia of prostate',73,'',1560,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1561,493,'Other diseases of the genitourinary system',74,'',1561,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1562,493,'Abortion',75,'',1562,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1563,493,'Haemorrhage of pregnancy and childbirth',76,'',1563,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1564,493,'Toxaemia of pregnancy',77,'',1564,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1565,493,'Complications of the puerperium',78,'',1565,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1566,493,'Other direct obstetric causes',79,'',1566,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1567,493,'Indirect obstetric causes',80,'',1567,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1568,493,'Diseases of skin and subcutaneous tissue',81,'',1568,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1569,493,'Diseases of the musculoskeletal system and connective tissue',82,'',1569,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1570,493,'Spina bifida and hydrocephalus',83,'',1570,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1571,493,'Congenital anomalies of the circulatory system',84,'',1571,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1572,493,'Other congenital anomalies',85,'',1572,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1573,493,'Birth trauma',86,'',1573,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1574,493,'Other conditions originating in the perinatal period',87,'',1574,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1575,493,'Senility',88,'',1575,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1576,493,'Signs symptoms and other ill-defined conditions',89,'',1576,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1577,493,'Accidents and adverse effects',90,'',1577,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1578,493,'Motor vehicle traffic accidents',91,'',1578,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1579,493,'Other transport accidents',92,'',1579,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1580,493,'Accidental poisoning',93,'',1580,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1581,493,'Accidental falls',94,'',1581,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1582,493,'Accidents caused by fire and flames',95,'',1582,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1583,493,'Accidental drowning and submersion',96,'',1583,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1584,493,'Accidents caused by machinery and by cutting and piercing instruments',97,'',1584,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1585,493,'Accidents caused by firearm missile',98,'',1585,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1586,493,'All other accidents including late effects',99,'',1586,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1587,493,'Drugs medicaments causing adverse effects in therapeutic use',100,'',1587,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1588,493,'Suicide and self- inflicted injury',101,'',1588,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1589,493,'Homicide and injury purposely inflicted by other persons',102,'',1589,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1590,493,'Other external causes',103,'',1590,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1591,48,'All Ages',1,'',1591,'Age','Age','a',2,2497,1, 1592,48,'Under 1',2,'',1592,'Age','Age','a',2,2497,1, 1593,48,'1 to 4',3,'',1593,'Age','Age','a',2,2497,1, 1594,48,'5 to 14',4,'',1594,'Age','Age','a',2,2497,1, 1595,48,'15 to 24',5,'',1595,'Age','Age','a',2,2497,1, 1596,48,'25 to 34',6,'',1596,'Age','Age','a',2,2497,1, 1597,48,'35 to 44',7,'',1597,'Age','Age','a',2,2497,1, 1598,48,'45 to 54',8,'',1598,'Age','Age','a',2,2497,1, 1599,48,'55 to 64',9,'',1599,'Age','Age','a',2,2497,1, 1600,48,'65 to 74',10,'',1600,'Age','Age','a',2,2497,1, 1601,48,'Over 75',11,'',1601,'Age','Age','a',2,2497,1, 1603,496,'# deaths',1,'',1603,'Parameter1','’Parameter','# or 1/100000 py',6,2664,1, 1604,496,'Mortality',2,'',1604,'Parameter1','’Parameter','# or 1/100000 py',6,2664,1, 1605,422,'Seychelles',1,'',1605,'Country','Country of observation','-',6,2664,1, 1606,422,'Brunei Darussalam',2,'',1606,'Country','Country of observation','-',6,2664,1, 1621,493,'1000',1,'',1621,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1622,493,'1001',2,'',1622,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1623,493,'1002',3,'',1623,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1624,493,'1003',4,'',1624,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1625,493,'1004',5,'',1625,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1626,493,'1005',6,'',1626,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1627,493,'1006',7,'',1627,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1628,493,'1007',8,'',1628,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1629,493,'1008',9,'',1629,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1630,493,'1009',10,'',1630,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1631,493,'1010',11,'',1631,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1632,493,'1011',12,'',1632,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1633,493,'1012',13,'',1633,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1634,493,'1013',14,'',1634,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1635,493,'1014',15,'',1635,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1636,493,'1015',16,'',1636,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1637,493,'1016',17,'',1637,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1638,493,'1017',18,'',1638,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1639,493,'1018',19,'',1639,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1640,493,'1019',20,'',1640,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1641,493,'1020',21,'',1641,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1642,493,'1021',22,'',1642,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1643,493,'1022',23,'',1643,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1644,493,'1023',24,'',1644,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1645,493,'1024',25,'',1645,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1646,493,'1025',26,'',1646,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1647,493,'1026',27,'',1647,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1648,493,'1027',28,'',1648,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1649,493,'1028',29,'',1649,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1650,493,'1029',30,'',1650,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1651,493,'1030',31,'',1651,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1652,493,'1031',32,'',1652,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1653,493,'1032',33,'',1653,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1654,493,'1033',34,'',1654,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1655,493,'1034',35,'',1655,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1656,493,'1035',36,'',1656,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1657,493,'1036',37,'',1657,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1658,493,'1037',38,'',1658,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1659,493,'1038',39,'',1659,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1660,493,'1039',40,'',1660,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1661,493,'1040',41,'',1661,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1662,493,'1041',42,'',1662,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1663,493,'1042',43,'',1663,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1664,493,'1043',44,'',1664,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1665,493,'1044',45,'',1665,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1666,493,'1045',46,'',1666,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1667,493,'1046',47,'',1667,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1668,493,'1047',48,'',1668,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1669,493,'1048',49,'',1669,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1670,493,'1049',50,'',1670,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1671,493,'1050',51,'',1671,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1672,493,'1051',52,'',1672,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1673,493,'1052',53,'',1673,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1674,493,'1053',54,'',1674,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1675,493,'1054',55,'',1675,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1676,493,'1055',56,'',1676,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1677,493,'1056',57,'',1677,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1678,493,'1057',58,'',1678,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1679,493,'1058',59,'',1679,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1680,493,'1059',60,'',1680,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1681,493,'1060',61,'',1681,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1682,493,'1061',62,'',1682,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1683,493,'1062',63,'',1683,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1684,493,'1063',64,'',1684,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1685,493,'1064',65,'',1685,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1686,493,'1065',66,'',1686,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1687,493,'1066',67,'',1687,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1688,493,'1067',68,'',1688,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1689,493,'1068',69,'',1689,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1690,493,'1069',70,'',1690,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1691,493,'1070',71,'',1691,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1692,493,'1071',72,'',1692,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1693,493,'1072',73,'',1693,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1694,493,'1073',74,'',1694,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1695,493,'1074',75,'',1695,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1696,493,'1075',76,'',1696,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1697,493,'1076',77,'',1697,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1698,493,'1077',78,'',1698,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1699,493,'1078',79,'',1699,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1700,493,'1079',80,'',1700,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1701,493,'1080',81,'',1701,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1702,493,'1081',82,'',1702,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1703,493,'1082',83,'',1703,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1704,493,'1083',84,'',1704,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1705,493,'1084',85,'',1705,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1706,493,'1085',86,'',1706,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1707,493,'1086',87,'',1707,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1708,493,'1087',88,'',1708,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1709,493,'1088',89,'',1709,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1710,493,'1089',90,'',1710,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1711,493,'1090',91,'',1711,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1712,493,'1091',92,'',1712,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1713,493,'1092',93,'',1713,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1714,493,'1093',94,'',1714,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1715,493,'1094',95,'',1715,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1716,493,'1095',96,'',1716,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1717,493,'1096',97,'',1717,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1718,493,'1097',98,'',1718,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1719,493,'1098',99,'',1719,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1720,493,'1099',100,'',1720,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1721,493,'1100',101,'',1721,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1722,493,'1101',102,'',1722,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1723,493,'1102',103,'',1723,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1724,493,'1103',104,'',1724,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 1729,48,'1-4',1,'',1729,'Age','Age','a',2,2497,1, 1730,48,'5-14',2,'',1730,'Age','Age','a',2,2497,1, 1731,48,'15-24',3,'',1731,'Age','Age','a',2,2497,1, 1732,48,'25-34',4,'',1732,'Age','Age','a',2,2497,1, 1733,48,'35-44',5,'',1733,'Age','Age','a',2,2497,1, 1734,48,'45-54',6,'',1734,'Age','Age','a',2,2497,1, 1735,48,'55-64',7,'',1735,'Age','Age','a',2,2497,1, 1736,48,'65-74',8,'',1736,'Age','Age','a',2,2497,1, 1737,48,'75 &+',9,'',1737,'Age','Age','a',2,2497,1, 1738,48,'Unknown',10,'',1738,'Age','Age','a',2,2497,1, 1740,48,'0',12,'',1740,'Age','Age','a',2,2497,1, 1741,48,'1',13,'',1741,'Age','Age','a',2,2497,1, 1742,48,'2',14,'',1742,'Age','Age','a',2,2497,1, 1743,48,'3',15,'',1743,'Age','Age','a',2,2497,1, 1744,48,'4',16,'',1744,'Age','Age','a',2,2497,1, 1745,48,'5-9',17,'',1745,'Age','Age','a',2,2497,1, 1746,48,'10-14',18,'',1746,'Age','Age','a',2,2497,1, 1747,48,'15-19',19,'',1747,'Age','Age','a',2,2497,1, 1748,48,'20-24',20,'',1748,'Age','Age','a',2,2497,1, 1749,48,'25-29',21,'',1749,'Age','Age','a',2,2497,1, 1750,48,'30-34',22,'',1750,'Age','Age','a',2,2497,1, 1751,48,'35-39',23,'',1751,'Age','Age','a',2,2497,1, 1752,48,'40-44',24,'',1752,'Age','Age','a',2,2497,1, 1753,48,'45-49',25,'',1753,'Age','Age','a',2,2497,1, 1754,48,'50-54',26,'',1754,'Age','Age','a',2,2497,1, 1755,48,'55-59',27,'',1755,'Age','Age','a',2,2497,1, 1756,48,'60-64',28,'',1756,'Age','Age','a',2,2497,1, 1757,48,'65-69',29,'',1757,'Age','Age','a',2,2497,1, 1758,48,'70-74',30,'',1758,'Age','Age','a',2,2497,1, 1759,48,'75-79',31,'',1759,'Age','Age','a',2,2497,1, 1760,48,'80-84',32,'',1760,'Age','Age','a',2,2497,1, 1761,48,'85 &+',33,'',1761,'Age','Age','a',2,2497,1, 1763,54,'Deaths',1,'',1763,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1764,36,'PM',1,'',1764,'Pollutant','Pollutant','-',2,2493,1, 1765,36,'CO2',2,'',1765,'Pollutant','Pollutant','-',2,2493,1, 1766,43,'Bus',1,'',1766,'Vehicle_type','Vehicle type','-',2,0,0, 1767,43,'Minibus',2,'',1767,'Vehicle_type','Vehicle type','-',2,0,0, 1768,43,'Car (d)',3,'',1768,'Vehicle_type','Vehicle type','-',2,0,0, 1769,43,'Car (g)',4,'',1769,'Vehicle_type','Vehicle type','-',2,0,0, 1770,539,'Injuries',1,'',1770,'Accidents','Accident type','-',6,2664,1, 1771,539,'Deaths',2,'',1771,'Accidents','Accident type','-',6,2664,1, 1775,567,' 6.00-20.00',1,'',1775,'Period1','Different times of day','h',6,2664,1, 1776,567,'20.00-24.00',2,'',1776,'Period1','Different times of day','h',6,2664,1, 1777,567,' 0.00- 6.00',3,'',1777,'Period1','Different times of day','h',6,2664,1, 1778,570,'0',1,'',1778,'Hour','Hour of day','h',6,2664,1, 1779,570,'1',2,'',1779,'Hour','Hour of day','h',6,2664,1, 1780,570,'2',3,'',1780,'Hour','Hour of day','h',6,2664,1, 1781,570,'3',4,'',1781,'Hour','Hour of day','h',6,2664,1, 1782,570,'4',5,'',1782,'Hour','Hour of day','h',6,2664,1, 1783,570,'5',6,'',1783,'Hour','Hour of day','h',6,2664,1, 1784,570,'6',7,'',1784,'Hour','Hour of day','h',6,2664,1, 1785,570,'7',8,'',1785,'Hour','Hour of day','h',6,2664,1, 1786,570,'8',9,'',1786,'Hour','Hour of day','h',6,2664,1, 1787,570,'9',10,'',1787,'Hour','Hour of day','h',6,2664,1, 1788,570,'10',11,'',1788,'Hour','Hour of day','h',6,2664,1, 1789,570,'11',12,'',1789,'Hour','Hour of day','h',6,2664,1, 1790,570,'12',13,'',1790,'Hour','Hour of day','h',6,2664,1, 1791,570,'13',14,'',1791,'Hour','Hour of day','h',6,2664,1, 1792,570,'14',15,'',1792,'Hour','Hour of day','h',6,2664,1, 1793,570,'15',16,'',1793,'Hour','Hour of day','h',6,2664,1, 1794,570,'16',17,'',1794,'Hour','Hour of day','h',6,2664,1, 1795,570,'17',18,'',1795,'Hour','Hour of day','h',6,2664,1, 1796,570,'18',19,'',1796,'Hour','Hour of day','h',6,2664,1, 1797,570,'19',20,'',1797,'Hour','Hour of day','h',6,2664,1, 1798,570,'20',21,'',1798,'Hour','Hour of day','h',6,2664,1, 1799,570,'21',22,'',1799,'Hour','Hour of day','h',6,2664,1, 1800,570,'22',23,'',1800,'Hour','Hour of day','h',6,2664,1, 1801,570,'23',24,'',1801,'Hour','Hour of day','h',6,2664,1, 1802,54,'Fraction',1,'',1802,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 1803,422,'BE',1,'',1803,'Country','Country of observation','-',6,2664,1, 1804,422,'BG',2,'',1804,'Country','Country of observation','-',6,2664,1, 1805,422,'CZ',3,'',1805,'Country','Country of observation','-',6,2664,1, 1806,422,'DK',4,'',1806,'Country','Country of observation','-',6,2664,1, 1807,422,'DE',5,'',1807,'Country','Country of observation','-',6,2664,1, 1808,422,'EE',6,'',1808,'Country','Country of observation','-',6,2664,1, 1809,422,'IE',7,'',1809,'Country','Country of observation','-',6,2664,1, 1810,422,'EL',8,'',1810,'Country','Country of observation','-',6,2664,1, 1811,422,'ES',9,'',1811,'Country','Country of observation','-',6,2664,1, 1812,422,'FR',10,'',1812,'Country','Country of observation','-',6,2664,1, 1813,422,'IT',11,'',1813,'Country','Country of observation','-',6,2664,1, 1814,422,'CY',12,'',1814,'Country','Country of observation','-',6,2664,1, 1815,422,'LV',13,'',1815,'Country','Country of observation','-',6,2664,1, 1816,422,'LT',14,'',1816,'Country','Country of observation','-',6,2664,1, 1817,422,'LU',15,'',1817,'Country','Country of observation','-',6,2664,1, 1818,422,'HU',16,'',1818,'Country','Country of observation','-',6,2664,1, 1819,422,'MT',17,'',1819,'Country','Country of observation','-',6,2664,1, 1820,422,'NL',18,'',1820,'Country','Country of observation','-',6,2664,1, 1821,422,'AT',19,'',1821,'Country','Country of observation','-',6,2664,1, 1822,422,'PL',20,'',1822,'Country','Country of observation','-',6,2664,1, 1823,422,'PT',21,'',1823,'Country','Country of observation','-',6,2664,1, 1824,422,'RO',22,'',1824,'Country','Country of observation','-',6,2664,1, 1825,422,'SI',23,'',1825,'Country','Country of observation','-',6,2664,1, 1826,422,'SK',24,'',1826,'Country','Country of observation','-',6,2664,1, 1827,422,'FI',25,'',1827,'Country','Country of observation','-',6,2664,1, 1828,422,'SE',26,'',1828,'Country','Country of observation','-',6,2664,1, 1829,422,'UK',27,'',1829,'Country','Country of observation','-',6,2664,1, 1884,609,'BAU',1,'',1884,'Pesticide_regulation','Pesticide regulation in Europe','-',6,2664,1, 1885,609,'Strict regulation',2,'',1885,'Pesticide_regulation','Pesticide regulation in Europe','-',6,2664,1, 1968,611,'BAU',1,'',1968,'Meat_consumption','Meat consumption in Europe','-',6,2664,1, 1969,611,'Low',2,'',1969,'Meat_consumption','Meat consumption in Europe','-',6,2664,1, 1970,612,'Beef',1,'',1970,'Animal','Farm animal species','-',6,2664,1, 1971,612,'Pork',2,'',1971,'Animal','Farm animal species','-',6,2664,1, 1972,612,'Poultry',3,'',1972,'Animal','Farm animal species','-',6,2664,1, 1973,612,'Sheep',4,'',1973,'Animal','Farm animal species','-',6,2664,1, 2093,613,'Urine',1,'',2093,'Waste','Livestock waste type','-',6,2664,1, 2094,613,'Manure',2,'',2094,'Waste','Livestock waste type','-',6,2664,1 ) 280,96,1 48,13 1,1,1,1,1,1,0,0,0,0 2,370,45,476,445 2,518,523,725,303,0,MIDM 2,404,34,750,516,0,MIDM 39325,65535,39321 [L_j,L_i] [L_j,L_i] Obj This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. Table(O_i,O_j)( 1,'Op_en1901','Net health effects due to the consumption of salmon','avoided cases/a',1,1901,1, 2,'Op_en2693','Testvariable','kg',1,2693,1, 3,'Op_en2201','The mortality due to PM 2.5 from buses','premature deaths',1,2201,1, 4,'Op_en2205','Bus engine technology','see wiki page',1,2205,1, 5,'Op_en2204','Primary PM2.5 emissions from bus traffic in Helsinki Metropolitan Area','kg/a',1,2204,1, 6,'Ppmconc_bustraffic','PM2.5 concentration from bus traffic in Helsinki in 2020','ug/m3',1,0,0, 7,'Op_en2202','Concentration-response to PM2.5','m3/ug',1,2202,1, 8,'Comptraf_scenoutput','Composite traffic v.1 scenario outputs','various',1,0,0, 9,'Fig_3_cost_by_source','Cost by source','e/trip',1,0,0, 10,'Fig_5a_societal_cost','Societal cost','e/day',1,0,0, 11,'Fig_5b_subsidies','Subsidies needed to obtain the composite fraction objective','e/day',1,0,0, 12,'Fig_5c_expanding','Societal costs at different levels of guarantee','e/day',1,0,0, 13,'Bw1','Human body weight in Harjavalta','kg',1,2475,1, 14,'Testvariable2','Another variable for testing','kg',1,0,0, 15,'Testvariable3','Testvariable 3: Another variable for testing','kg',1,0,0, 16,'Op_en1900','Pollutant health risk due to the consumption of salmon','avoided cases/a',1,1900,1, 17,'Op_en1903','Persistent pollutant concentrations in salmon','µg/kg',1,1903,1, 18,'Op_en1905','Exposure to persistent pollutants due to salmon in the population of the Western Europe','µg/kg/d',1,1905,1, 19,'Op_en1906','Dose-response function of persistent pollutants','(mg/kg/d)-1',1,1906,1, 20,'Op_en1907','Omega-3 content in salmon','g/g',1,1907,1, 21,'Op_en1908','Omega-3 intake due to salmon in the population of the Western Europe','g/d',1,1908,1, 22,'Op_en1910','Total mortality in the Western Europe','cases/a',1,1910,1, 23,'Op_en1911','Cardiovascular mortality in the Western Europe','cases/a',1,1911,1, 24,'Op_en1912','Cardiovascular effects of omega-3 in salmon in teh Western Europe','avoided cases/a',1,1912,1, 25,'Op_en1898','Recommendation for consumption of farmed salmon','-',1,1898,1, 26,'Op_en1899','Pollutant concentration limits for fish feed','-',1,1899,1, 27,'Op_en1902','Persistent pollutant concentrations in fish feed','fraction',1,1902,1, 28,'Op_en1904','Salmon intake in the population of the Western Europe','g/d',1,1904,1, 29,'Op_en1909','ERF of omega-3 fatty acids on cardiovascular effects','1/(g/d)',1,1909,1, 30,'Op_en2556','Personal exposures to volatile organic compounds in Germany','ug/m^3',1,2556,1, 31,'Op_en2406','Excess cases of iMetHb in England and Wales','number',1,2406,1, 33,'Decision','Possible range of decisions for a single decision-maker','-',2,2496,1, 34,'Health_impact','Health impact','',2,2495,1, 35,'Time','Time','s or date',2,2497,1, 36,'Pollutant','Pollutant','-',2,2493,1, 37,'Spatial_location','Spatial location',' km or °',2,2498,1, 38,'Length','Length','km',2,2498,1, 39,'Non_health_impact','Non-health impact','-',2,2500,1, 40,'Period','Period','s',2,2497,1, 41,'Emission_source','Emission source','-',2,2492,1, 42,'Environ_compartment','Environmental compartment','-',2,2490,1, 43,'Vehicle_type','Vehicle type','-',2,0,0, 44,'Person_or_group','Person or group','-',2,2499,1, 45,'Transport_mode','Transport mode','-',2,0,0, 46,'Cost_type','Cost type','-',2,0,0, 47,'Composite_fraction','Composite fraction','fraction',2,0,0, 48,'Age','Age','a',2,2497,1, 49,'Municipality_fin','Municipalities in Finland','-',2,2498,1, 51,'Food_source','The method for food production','-',2,0,0, 52,'Feed_pollutant','Decision about fish feed','-',2,0,0, 53,'Salmon_recomm','Decision about samon consumption recommendation','-',2,0,0, 32,'0','No dimension has been identified','-',2,0,0, 54,'Parameter','Statistical and other parameters of a variable','-',2,0,0, 55,'Salmon_decision','','',6,0,0, 56,'Hma_area','','',6,0,0, 57,'Hma_region','','',6,0,0, 58,'Hma_zone','','',6,0,0, 59,'Year_1','','',6,0,0, 60,'Op_en2665','Cause of death 1','ICD-10',6,2665,1, 61,'Year_2','','',6,0,0, 62,'Cause_of_death_2','','',6,0,0, 63,'Length_1','','',6,0,0, 70,'Output_1','','',6,0,0, 65,'Period_1','','',6,0,0, 86,'Run','','',6,0,0, 71,'Vehicle_noch','','',6,0,0, 72,'Stakeholder_1','','',6,0,0, 73,'Mode1','','',6,0,0, 74,'Cost_structure_1','','',6,0,0, 75,'Comp_fr_1','','',6,0,0, 76,'Age1','','',6,0,0, 77,'Municipality_fin1','','',6,0,0, 82,'Year3','','',6,0,0, 81,'Recommendation1','','',6,0,0, 80,'Reg_poll','','',6,0,0, 79,'Salmon1','','',6,0,0, 78,'Pollutant1','','',6,0,0, 83,'H1899','','',6,0,0, 84,'H1898','','',6,0,0, 85,'Cause_of_death3','','',6,0,0, 87,'Condb_compartment1','','',6,0,0, 88,'Condb_location1','','',6,0,0, 89,'Condb_agent1','','',6,0,0, 90,'Condb_param1','','',6,0,0, 91,'Condb_agent2','','',6,0,0, 92,'Vehicle_1','','',6,0,0, 93,'Op_en2672','','',6,0,0, 94,'94','Analytica','',9,0,0, 95,'95','Analytica 4.1.0.9','',9,0,0, 97,'97','Analytica 4.1.0.9, CompositeTraffic_1_0_6.ana v. 11:47, 1000 iterations','',9,0,0, 99,'99','Analytica 4.1.0.9, RDB connection.ANA, 100 iterations','',9,0,0, 100,'100','RDB connection.ANA v. 1.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 100','',9,0,0, 101,'101','RDB connection.ANA v. 2.9.2008. Test data only., Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 100','',9,0,0, 102,'102','RDB connection.ANA v. 3.9.2008 b. Test data only., Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 100','',9,0,0, 103,'103','Farmed salmon.ANA 10:36, 31 December 2007, RDB connection.ANA 13:58, 3 September 2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 1000','',9,0,0, 104,'104','Farmed salmon.ANA 10:36, 31 December 2007, RDB connection.ANA 13:58, 3 September 2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 1000','',9,0,0, 105,'105','Farmed salmon.ANA 10:36, 31 December 2007, RDB connection.ANA 13:58, 3 September 2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 1000','',9,0,0, 106,'106','Farmed salmon.ANA 10:36, 31 December 2007, RDB connection.ANA 13:58, 3 September 2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 10','',9,0,0, 107,'107','Farmed salmon.ANA 8.9.2008, RDB connection.ANA 8.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 10','',9,0,0, 108,'108','Farmed salmon.ANA 8.9.2008, RDB connection.ANA 8.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 1000','',9,0,0, 98,'98','Test','',9,0,0, 109,'109',' CompositeTraffic_1_0_6.ANA 16.9.2008, RDB connection.ANA 16.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 10','',9,0,0, 110,'110',' CompositeTraffic_1_0_6.ANA 16.9.2008, RDB connection.ANA 16.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 1000','',9,0,0, 111,'111','RDB connection.ANA 16.9.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 100','',9,0,0, 112,'112','RDB connection.ANA 9.10.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 100','',9,0,0, 113,'113','RDB connection.ANA 9.10.2008, Edition: Enterprise, Platform: Windows, Version: 40100, Samplesize: 10','',9,0,0, 114,'Op_en1896','Benefit-risk assessment on farmed salmon','',4,1896,1, 130,'Op_en2705','Pollutant','-',6,2705,1, 131,'Op_en2706','Salmon type','-',6,2706,1, 133,'Op_en2707','Cause of death3','ICD-10',6,2707,1, 135,'Op_en2708','Year3','year',6,2708,1, 137,'Op_en2694','Testrun 1: Analytica Enterprise, (Windows), Version: 40100, Samplesize: 10','',9,2694,1, 159,'Op_eni1896','Benefit-risk assessment of farmed salmon','',4,0,1, 160,'Op_eni2694','Testrun 1: Analytica Enterprise, (Windows), Version: 40100, Samplesize: 10','',9,0,1, 183,'Op_eni2695','Testrun 2: Analytica Enterprise, (Windows), Version: 40100, Samplesize: 1000','',9,0,1, 184,'Op_en2778','Mortality in Finland','# or 1/100000 py',1,2778,1, 185,'Op_en2780','Sex','-',6,2780,1, 186,'Op_en2779','Diagnosis1','-',6,2779,1, 187,'Op_en2784','Units1','-',6,2784,1, 188,'Op_en2781','Age group1','a',6,2781,1, 189,'Country1','Country1','-',6,2785,1, 191,'Op_en2695','Testrun 2: Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','',9,2695,1, 192,'Op_en2811','Morbidity data for Europe','1/100000 a',1,2811,1, 193,'Age2','Age2','a',6,2812,1, 194,'Country2','Country2','-',6,2813,1, 195,'Year2','Year2','a',6,2814,1, 196,'Sex2','Sex2','-',6,2815,1, 207,'Diagnosis2','Diagnosis2','ICD-10',6,2835,1, 203,'203','Testrun 2: Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','',9,2817,1, 210,'Op_en2495','Health outcome1','-',6,2495,1, 211,'Op_en2922','Ecosense test study','Euro',7,2922,1, 212,'212.00000000000000','Country identifier','-',6,2664,1, 213,'213.00000000000000','Receptor of the impact','-',6,2664,1, 214,'214.00000000000000','Receptor subgroup','-',6,2664,1, 215,'215.00000000000000','Impact in the receptor','-',6,2664,1, 216,'216.00000000000000','Pollutant causing the impact','-',6,2664,1, 217,'217.00000000000000','Reference for the impact function','-',6,2664,1, 218,'Op_en2817','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0.00000000000000',9,2817,1, 220,'220.00000000000000','Country identifier','-',6,2664,1, 221,'221.00000000000000','Receptor of the impact','-',6,2664,1, 222,'222.00000000000000','Receptor subgroup','-',6,2664,1, 223,'223.00000000000000','Impact in the receptor','-',6,2664,1, 224,'224.00000000000000','Pollutant causing the impact','-',6,2664,1, 225,'225.00000000000000','Reference for the impact function','-',6,2664,1, 227,'227.00000000000000','Country identifier','-',6,2664,1, 228,'228.00000000000000','Receptor of the impact','-',6,2664,1, 229,'229.00000000000000','Receptor subgroup','-',6,2664,1, 230,'230.00000000000000','Impact in the receptor','-',6,2664,1, 231,'231.00000000000000','Pollutant causing the impact','-',6,2664,1, 232,'232.00000000000000','Reference for the impact function','-',6,2664,1, 234,'234.00000000000000','Country identifier','-',6,2664,1, 235,'235.00000000000000','Receptor of the impact','-',6,2664,1, 236,'236.00000000000000','Receptor subgroup','-',6,2664,1, 237,'237.00000000000000','Impact in the receptor','-',6,2664,1, 238,'238.00000000000000','Pollutant causing the impact','-',6,2664,1, 239,'239.00000000000000','Reference for the impact function','-',6,2664,1, 241,'241.00000000000000','Country identifier','-',6,2664,1, 242,'242.00000000000000','Receptor of the impact','-',6,2664,1, 243,'243.00000000000000','Receptor subgroup','-',6,2664,1, 244,'244.00000000000000','Impact in the receptor','-',6,2664,1, 245,'245.00000000000000','Pollutant causing the impact','-',6,2664,1, 246,'246.00000000000000','Reference for the impact function','-',6,2664,1, 248,'248.00000000000000','Country identifier','-',6,2664,1, 249,'249.00000000000000','Receptor of the impact','-',6,2664,1, 250,'250.00000000000000','Receptor subgroup','-',6,2664,1, 251,'251.00000000000000','Impact in the receptor','-',6,2664,1, 252,'252.00000000000000','Pollutant causing the impact','-',6,2664,1, 253,'253.00000000000000','Reference for the impact function','-',6,2664,1, 255,'255.00000000000000','Country identifier','-',6,2664,1, 256,'256.00000000000000','Receptor of the impact','-',6,2664,1, 257,'257.00000000000000','Receptor subgroup','-',6,2664,1, 258,'258.00000000000000','Impact in the receptor','-',6,2664,1, 259,'259.00000000000000','Pollutant causing the impact','-',6,2664,1, 260,'260.00000000000000','Reference for the impact function','-',6,2664,1, 262,'262.00000000000000','Country identifier','-',6,2664,1, 263,'263.00000000000000','Receptor of the impact','-',6,2664,1, 264,'264.00000000000000','Receptor subgroup','-',6,2664,1, 265,'265.00000000000000','Impact in the receptor','-',6,2664,1, 266,'266.00000000000000','Pollutant causing the impact','-',6,2664,1, 267,'267.00000000000000','Reference for the impact function','-',6,2664,1, 269,'269.00000000000000','Country identifier','-',6,2664,1, 270,'270.00000000000000','Receptor of the impact','-',6,2664,1, 271,'271.00000000000000','Receptor subgroup','-',6,2664,1, 272,'272.00000000000000','Impact in the receptor','-',6,2664,1, 273,'273.00000000000000','Pollutant causing the impact','-',6,2664,1, 274,'274.00000000000000','Reference for the impact function','-',6,2664,1, 275,'275.00000000000000','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0.00000000000000',9,2817,1, 277,'CountryID','Country identifier','-',6,2664,1, 278,'Receptor','Receptor of the impact','-',6,2664,1, 279,'ReceptorSubGroup','Receptor subgroup','-',6,2664,1, 280,'Impact','Impact in the receptor','-',6,2664,1, 282,'FunctionReference','Reference for the impact function','-',6,2664,1, 283,'283.00000000000000','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0.00000000000000',9,2817,1, 291,'291','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 299,'299','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 300,'Op_fi1669','Cesium-137 elintarvikkeissa','Bq or mg/kg f.w.',7,1669,2, 301,'Municipality','Municipality in Finland','-',6,2664,1, 302,'Lake','Lake in Finland','-',6,2664,1, 303,'Date','Date of observation','date',6,2664,1, 304,'Fish','Fish species','-',6,0,5, 305,'Samplesize','Number of samples taken','#',6,2664,1, 306,'Minsize','Minimum size','cm',6,2664,1, 307,'Maxsize','Maximum size','cm',6,2664,1, 308,'137Cs_Bq/kgtpVammala','Concentration of Cs-137 in sample, measured by Vammala','Bq/kg f.w.',6,2664,1, 309,'137Cs_Bq/kgtpSTUK','Concentration of Cs-137 in sample, measured by STUK','Bq/kg f.w.',6,2664,1, 310,'Hg_mg/kgtp','Concentration of methyl mercury','mg/kg f.w.',6,2664,1, 311,'311','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 323,'323','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 335,'335','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 347,'347','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 359,'359','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 371,'371','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 383,'383','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 395,'395','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 407,'407','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 419,'419','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 422,'Country','Country of observation','-',6,2664,1, 423,'Year','Year of observation','a',6,2664,1, 424,'Sex','Sex of a person','-',6,2664,1, 425,'Morbidity','Morbidity of a person','1/100000 py',6,2664,1, 426,'426','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 433,'433','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 434,'Op_fi2811','Morbidity in Europe','Bq or mg/kg f.w.',7,2811,1, 440,'440','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 447,'447','Analytica Enterprise, (Windows), Version: 40100, Samplesize: 100','0',9,2817,1, 448,'Op_fi2818','Morbidity in Europe','a',1,2818,2, 453,'453','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 459,'459','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 465,'465','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 471,'471','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 477,'477','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 478,'Op_en2943','EU ETS data from CITL','tonne of CO2-equ',1,2943,1, 480,'CITL sector','CITL sector','-',6,2664,1, 481,'CITL_information','CITL information','-',6,2664,1, 483,'483','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 489,'489','Analytica ADE Optimizer, (Windows), Version: 40.2K, Samplesize: 100','',9,2817,1, 493,'Diagnosis','Diagnosis','ICD-10',6,2664,1, 496,'Parameter1','’Parameter','# or 1/100000 py',6,2664,1, 497,'497','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 504,'504','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 511,'511','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 518,'518','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 519,'Op_en2987','Costs of unit emissions of air pollutants','e/kg',1,2987,1, 521,'521','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 527,'527','Analytica ADE Optimizer, (Windows), Version: 4.02e+004, Samplesize: 100','',9,2817,1, 529,'Op_en2988','Unit cost of driving','e/km',1,2988,1, 530,'Op_en2989','Emission factors of cars on air pollutants','g/km',1,2989,1, 533,'533','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 537,'Op_en2990','Traffic accidents in the Helsinki metropolitan area’','#/a',1,2990,1, 539,'Accidents','Accident type','-',6,2664,1, 541,'541','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 549,'549','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 557,'557','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 558,'Op_en2995','Total amount of car kilometres driven in the Helsinki metropolitan area','km/d',1,2995,1, 559,'559','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 561,'561','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 563,'563','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 565,'565','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 567,'Period1','Different times of day','h',6,2664,1, 568,'568','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 569,'Op_en2999','Population time-activity patterns','fraction',1,2999,1, 570,'Hour','Hour of day','h',6,2664,1, 571,'571','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 2','',9,2817,1, 574,'574','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 2','',9,2817,1, 577,'577','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 2','',9,2817,1, 580,'580','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 2','',9,2817,1, 581,'Op_en3003','Type of a random car','-',1,3003,1, 582,'582','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','-',9,2817,1, 585,'585.00000000000000','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 588,'588','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 1000','',9,2817,1, 589,'Op_en3010','Neurodevelopmental effect of nitrate','# cases/a',1,3010,1, 591,'591','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 100','',9,2817,1, 593,'Op_en3011','Cancer due to pesticides in Europe','# cases/a',1,3011,1, 594,'Op_en3012','Gastric infections in Europe','# cases/a',1,3012,1, 595,'Op_en3013','Pesticide regulation in Europe','-',1,3013,1, 596,'Op_en3014','Irrigation practices of agricultural land in Europe','-',1,3014,1, 597,'Op_en3015','Biofuel production in Europe','-',1,3015,1, 598,'Op_en3016','Meat consumption in Europe','-',1,3016,1, 599,'Op_en3017','Population in Europe','#',1,3017,1, 600,'Op_en3018','Number of farm animals in Europe','#',1,3018,1, 601,'Op_en3019','Fertilizer use in Europe','ton/a',1,3019,1, 602,'Op_en3020','Pesticide use in Europe','kg/a',1,3020,1, 603,'Op_en3021','Pesticide exposure in Europe','mg/kg/a',1,3021,1, 604,'Op_en3022','ERF of pesticides on cancer','1 per (mg/kg/d)',1,3022,1, 605,'Op_en3023','Livestock wastes in Europe','ton/a',1,3023,1, 606,'Op_en3024','Nitrate leaching and run-off in Europe','ton/a',1,3024,1, 607,'Op_en3025','Livestock waste leaching and run-off in Europe','ton/a',1,3025,1, 609,'Pesticide_regulation','Pesticide regulation in Europe','-',6,2664,1, 610,'Irrigation_practices','Irrigation practices of agricultural land in Europe','-',6,2664,1, 611,'Meat_consumption','Meat consumption in Europe','-',6,2664,1, 612,'Animal','Farm animal species','-',6,2664,1, 613,'Waste','Livestock waste type','-',6,2664,1, 614,'614','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 200','',9,2817,1, 632,'632','Analytica Enterprise, (Windows), Version: 40.1K, Samplesize: 200','',9,2817,1 ) 280,48,1 48,13 1,1,1,1,1,1,0,0,0,0 2,378,21,493,501 2,152,162,1057,343,0,MIDM 2,573,21,700,421,0,MIDM 39325,65535,39321 [O_j,O_i] [O_j,O_i] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] Sett This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. Table(S_i,S_j)( 1,33,1, 2,37,1, 5,35,1, 6,34,1, 9,38,1, 10,39,1, 11,40,1, 12,32,1, 13,43,1, 14,44,1, 15,45,1, 16,46,1, 17,47,1, 18,48,1, 19,49,1, 23,51,1, 24,36,1, 28,42,1, 31,54,1, 35,114,3, 38,137,9, 37,114,4, 39,159,3, 41,160,9, 44,183,9, 47,191,9, 46,184,4, 45,184,3 ) 280,72,1 48,13 1,1,1,1,1,1,0,0,0,0 2,378,21,493,501 2,529,143,700,421,0,MIDM 39325,65535,39321 [S_j,S_i] [S_i,S_j] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] Item This node checks the variables listed in Var_for_rdb and makes an index of those that are NOT found in the result database. This is then used as an index in Inp_var for adding variable information. Table(It_i,It_j)( 1,1,55,0, 2,2,56,0, 3,2,57,0, 4,2,58,0, 5,5,59,0, 6,6,60,0, 7,5,61,0, 8,6,62,0, 9,9,63,0, 10,11,65,0, 11,10,70,0, 12,13,71,0, 13,14,72,0, 14,15,73,0, 15,16,74,0, 16,17,75,0, 17,18,76,0, 18,19,77,0, 19,24,78,0, 20,23,79,0, 21,1,80,0, 22,1,81,0, 23,5,82,0, 24,1,83,0, 25,1,84,0, 26,6,85,0, 27,12,86,0, 28,28,87,0, 29,2,88,0, 30,24,89,0, 31,31,90,0, 32,24,91,0, 33,13,92,0, 34,2,93,0, 35,35,28,0 ) 280,120,1 48,13 1,1,1,1,1,1,0,0,0,0 2,378,21,493,501 2,529,143,700,421,0,MIDM 39325,65535,39321 [It_j,It_i] [It_i,It_j] ['H1991'] [Self,1,Sys_localindex('I'),1,Sys_localindex('J'),1] Assessment DO NOT REMOVE THIS NODE. It is needed for computing the Objects node. ktluser 29. Decta 2008 21:51 48,24 168,256,1 52,12 1,11,11,550,300,17 (var, table) Write1 if size(var)>0 then appendtablesql(var,var.i, var.j, table&' ') 56,368,1 48,13 2,687,61,476,224 var,table 'Add password' 168,280,0 52,12 1,1,1,1,1,1,0,0,0,0 2,163,375,476,224 [Formnode Writerpsswd1] 52425,39321,65535 Platform Choice(Self,2,False,1) 320,328,1 48,12 [Formnode Platform1] 52425,39321,65535 ['Lumina AWP','THL computer'] study_ident; n_indices; n_parameters; n_variables 56,400,1 48,12 1,1,1,1,1,1,0,0,0,0 Platform 0 176,44,1 160,12 1,0,0,1,0,0,0,142,0,1 52425,39321,65535 Platform Writerpsswd 0 176,68,1 160,12 1,0,0,1,0,0,0,142,0,1 52425,39321,65535 Writerpsswd Upload an Analytica model. This functionality does not work with the web version. It requires that you have Analytica Enterprise and an editable version of Opasnet Base Connection. 152,712,-1 144,80 1,0,0,1,0,1,0,,0, 2,693,146,476,224 For advanced users: you may upload whole models, or non-public data that can only be seen by people with a special permission. 276,604,-1 268,20 424,712,-1 120,80 1,0,0,1,0,1,0,,0, 2,693,146,476,224