User subjectivity in Monte Carlo modeling of pesticide exposure

被引:15
作者
Beulke, Sabine [1 ]
Brown, Colin D.
Dubus, Igor G.
Galicia, Hector
Jarvis, Nicholas
Schaefer, Dieter
Trevisan, Marco
机构
[1] Cent Sci Lab, York YO41 1LZ, N Yorkshire, England
[2] Univ York, Dept Environm, York YO10 5DD, N Yorkshire, England
[3] Bur Rech Geol & Minieres, Water Div, F-45060 Orleans 2, France
[4] Springborn Smithers Labs AG, CH-9326 Horn, Switzerland
[5] Swedish Univ Agr Sci, Dept Soil Sci, S-75007 Uppsala, Sweden
[6] Bayer CropSci Metab & Environm Fate, D-40764 Monheim, Germany
[7] Univ Cattolica Sacro Cuore, Inst Chim Agraria & Ambientale, Fac Agraria, I-29100 Piacenza, Italy
关键词
Monte Carlo; user subjectivity; pesticide exposure modeling; degradation; sorption;
D O I
10.1897/05-332R.1
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Monte Carlo techniques are increasingly used in pesticide exposure modeling to evaluate the uncertainty in predictions a-rising from uncertainty in input parameters and to estimate the confidence that should be assigned to the modeling results. The approach typically involves running a deterministic model repeatedly for a large number of input values sampled from statistical distributions. In the present study, six modelers made choices regarding the type and parameterization of distributions assigned to degradation and sorption data for an example pesticide, the correlation between the parameters, the tool and method used for sampling, and the number of samples generated. A leaching assessment was carried out using a single model and scenario and all data for sorption and degradation generated by the six modelers. The distributions of sampled parameters differed between the modelers. and the agreement with the measured data was variable. Large differences were found between the upper percentiles of simulated concentrations in leachate. The probability of exceeding 0.1 mu g/L ranged from 0 to 35.7%. The present study demonstrated that subjective choices made in Monte Carlo modeling introduce variability into probabilistic modeling and that the results need to be interpreted with care.
引用
收藏
页码:2227 / 2236
页数:10
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