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Published byCory Gallagher Modified over 9 years ago
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PROBABILISTIC DIETARY EXPOSURE ASSESSMENT TO PESTICIDE RESIDUES
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STRUCTURE Applications of probabilistic exposure assessments Pesticide conceptual model Exposure assessment to chlorpyrifos Input data Model settings Results of assessment Information on uncertainty Contribution of food items
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APPLICATIONS Risk assessment for pesticide authorisation Risk assessment of registered pesticides Characterisation of variability and uncertainty Identification of the main contributions to the intake
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EXPOSURE ASSESSMENT N Iterations Frequency Pear Residue Apple Residue Orange Residue Exposure = Σ(Consumption * Residue) / Bodyweight Consumption P A O 2 1 N 4 3
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Exposure assessment
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PESTICIDE CONCEPTUAL MODEL PESTICIDE RESIDUE INTAKE FOOD SURVEY PESTICIDE RESIDUE MONITORING PROGRAMME CONSUMPTIO OF RAW AGRICULTURAL COMMODITY (RAC) ADJUSTED RESIDUE (PAC)
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ACUTE EXPOSURE ASSESSMENT PESTICIDE: Chlorpyrifos POPULATION: Infants of the Basque Country 8 to 12 months old PERIOD:1 day
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INPUT DATA Food consumption dataFood diary and recipes. Basque Country BodyweightFood diary and recipes. Basque Country Pesticide residue dataMonitoring programmes CCAA Spain MRLs spanish legislation
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INPUT DATA Observed data Data(0.08,0.24,0.039,0.26,0.68,0.43,0.20,0.06,0.63,0.61,1.6,0.38,0. 53,0.94) Histogram Parametric distribution Lognorm(1.43,0.83) 0.0 0.4 0.8 0.31.01.72.43.2 3.9 Lognorm
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UNIT-TO-UNIT VARIABILITY Composite sample MEAN ANALYSIS ACUTE EXPOSURE ?
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UNIT TO UNIT VARIABILITY OPTIONS No variability adjustment Concentration = mean for all units Variability GVDSP raw lab data Laboratory data for individual units Variability GVDSP lognormal Concentration in units described by a lognormal distribution Variability RIKILT No. Units in composite sample Concentration in units described by a Bernouilli distribution
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LOGNORMAL VARIABILITY R Log(R,f(R, )) Distribution residues units x r1 +x r3x r2 + Intake = Distribution of residues Composite samples Consumption: 3 apples
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MEDIAN MEAN sd 95 th p Minimun 99 th p
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1550 90 95 97.5 98 99 99.5 99.9 2.5
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97.5 th p 99 th p
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VALIDATION: Cumulative distributions
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CHARACTERISING UNCERTAINTY Processing factors: with vs. without No analysisMRL vs. 0 Samples < LORLOR vs 0 Variability with vs. without REFERENCE MODEL: WITH PROCES. WITH VARIAB MRL LOR
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97.5 th P No proc factors Reference model LOR = 0 MRL = 0 No variability
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CONTRIBUTION OF FOOD ITEMS 95th Percentile
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