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Health scores for farmed animals: Screening pig health with register data from public and private databases

机译:养殖动物的健康成分:筛选猪健康与来自公共和私人数据库的注册数据

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There are growing demands to ensure animal health and, from a broader perspective, animal welfare, especially for farmed animals. In addition to the newly developed welfare assessment protocols, which provide a harmonised method to measure animal health during farm visits, the question has been raised whether data from existing data collections can be used for an assessment without a prior farm visit. Here, we explore the possibilities of developing animal health scores for fattening pig herds using a) official meat inspection results, b) data on antibiotic usage and c) data from the QS (QS Qualit?t und Sicherheit GmbH) Salmonella monitoring programme in Germany. The objective is to aggregate and combine these register-like data into animal health scores that allow the comparison and benchmark of participating pig farms according to their health status. As the data combined in the scores have different units of measure and are collected in different abattoirs with possibly varying recording practices, we chose a relative scoring approach using z-transformations of different entrance variables. The final results are aggregated scores in which indicators are combined and weighted based on expert opinion according to their biological significance for animal health. Six scores have been developed to describe different focus areas, such as "Respiratory Health", "External Injuries/ Alterations", "Animal Management", "Antibiotic Usage", " Salmonella Status" and "Mortality". These "focus" area scores are finally combined into an "Overall Score". To test the scoring method, existing routine data from 1,747 pig farm units in Germany are used; these farm units are members of the QS Qualit?t und Sicherheit GmbH (QS) quality system. In addition, the scores are directly validated for 38 farm units. For these farm units, the farmers and their veterinarians provided their perceptions concerning the actual health status and existing health problems. This process allowed a comparison of the scoring results with actual health information using kappa coefficients as a measure of similarity. The score testing of the focus area scores using real information resulted in normalised data. The results of the validation showed satisfactory agreement between the calculated scores for the project farm units and the actual health information provided by the related farmers and veterinarians. In conclusion, the developed scoring method could become a viable benchmark and risk assessment instrument for animal health on a larger scale under the conditions of the German system.
机译:越来越多的需求来确保动物健康,从更广泛的角度来看,动物福利,特别是对于养殖动物。除了新开发的福利评估协议外,该协议还提供衡量农场访问期间动物健康的方法,还提出了来自现有数据收集的数据是否可以用于未经事先农业访问的评估。在这里,我们探讨了使用a)官方肉类检查结果的育肥群的动物健康成绩的可能性,b)来自QS的抗生素使用量和c)数据(qs质量Δtdsicheatgmbh)德国的奶士监测计划。目标是汇总并将这些寄存器样数据与动物健康成绩合并,以便根据其健康状况进行参与养猪场的比较和基准。随着数据在得分中的数据组合具有不同的测量单位并且在不同的AbattoIR中收集有可能不同的记录实践,我们选择了使用不同入口变量的Z变换的相对评分方法。最终结果是根据其生物健康的生物意义基于专家意见组合和加权的汇总分数。已经开发出六分以描述不同的焦点区域,例如“呼吸健康”,“外部伤害/改变”,“动物管理”,“抗生素使用”,“沙门氏体状态”和“死亡率”。这些“焦点”区域分数最终融入了“整体分数”。为了测试评分方法,使用德国1,747个猪农场单位的现有常规数据;这些农场单位是QS的成员,QUET und Sicherheit GmbH(QS)质量体系。此外,分数直接验证38个农业单位。对于这些农场单位,农民及其兽医提供了涉及实际健康状况和现有健康问题的看法。该过程允许使用Kappa系数作为相似性的衡量标准的实际健康信息比较评分结果。使用真实信息的焦点区域分数的分数测试导致标准化数据。验证结果表明,项目农业单位的计算成绩与相关农民和兽医提供的实际健康信息之间的令人满意的协议。总之,发达的评分方法可在德国系统条件下成为一种可行的基准和风险评估工具,用于德国系统的条件。

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