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Causal hidden variable model of pathogenic contamination from pig to pork

机译:猪到猪肉致病性污染的因果隐藏变量模型

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Risk assessments relating to food safety over more than one step along a production chain are frequently hampered by lack of detailed quantitative data. This study set out to develop a Bayesian hidden variable model to integrate available limited data of the combined occurrence of three bacterial pathogens, Listeria monocytogenes, Yersinia enterocolitica and Yersinia pseudotuberculosis, with causal assumptions along three steps of pork production chain. The pathogen occurrence data were animal specific both on conventional and organic pig farms and at the abattoir, but merely farm specific at meat cutting plants. The model was able to incorporate all data concerning different types of testing at different steps of the chain, and missing data values were dealt with in a straightforward manner. It provides a tool for quantitative risk assessments and for estimating the causal risk mitigation effects by combining external data with the specific follow-up data. Intervention effects are provided with Bayesian credible intervals indicating the uncertainty due to all information sources included in the model. Combined prevalence in Finnish pork was estimated to be 1-11% and it could be reduced to 0-2% if head was removed intact and rectum sealed off.
机译:缺乏详细的定量数据通常会阻碍与食品安全有关的风险评估,整个生产链中的一个步骤以上。这项研究着手开发贝叶斯隐藏变量模型,以整合三种细菌病原体,单核细胞增生性李斯特菌,小肠结肠炎耶尔森氏菌和假结核耶尔森氏菌的合并发生的可用有限数据,并在猪肉生产链的三个步骤中建立因果假设。在常规和有机养猪场以及屠宰场,病原体发生的数据都是动物特有的,而在切肉厂则仅是农场特有的。该模型能够在链的不同步骤中合并与不同类型的测试有关的所有数据,并且以简单的方式处理丢失的数据值。它通过将外部数据与特定的后续数据相结合,提供了定量风险评估和估算因果缓解风险的工具。贝叶斯可信区间提供了干预效果,表明由于模型中包括的所有信息源而导致的不确定性。芬兰猪肉的综合患病率估计为1-11%,如果完整取出头部并密封直肠,则可以降低到0-2%。

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