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探索一种通过算法生成的动物福利指标在奶牛群福利评估中的用途。

Exploring uses for an algorithmically generated Animal Welfare Indicator for welfare assessment of dairy herds.

作者信息

Barry Conor, Ellingsen-Dalskau Kristian, Winckler Christoph, Kielland Camilla

机构信息

Department of Production Animal Clinical Sciences, Faculty of Veterinary Medicine, Norwegian University of Life Sciences, 1433 Ås, Norway.

Department for Animal Health, Animal Welfare and Food Safety, Norwegian Veterinary Institute, 1433 Ås, Norway.

出版信息

J Dairy Sci. 2024 Jun;107(6):3941-3958. doi: 10.3168/jds.2023-24158. Epub 2024 Jan 20.

Abstract

On-farm welfare assessment is time-consuming and costly. Assessing welfare using routinely collected herd data has been proposed as a more economical alternative. The online Animal Welfare Indicator (AWI), developed by a Norwegian dairy cooperative, applies an algorithm to routinely collected health, production, and management data to "indicate" aspects of animal welfare at herd level. The overall AWI score is based on 10 AWI subindicator scores, representative of elements of animal welfare such as claw health, udder health, and mortality. Our cross-sectional study explored 2 ways in which the AWI may enable more efficient welfare assessment of Norwegian dairy herds. First, we investigated using the AWI to reduce the duration of on-farm assessments by replacing on-farm measures. Second, we examined reducing the number of on-farm welfare assessments by using the AWI to predict which herds have poorer welfare with respect to specific on-farm measures. Using Spearman rank analyses, we investigated if the AWI scores for 157 herds were associated with 24 on-farm welfare variables measured contemporaneously by Welfare Quality assessment. The mortality AWI subindicator score and the percentage mortality in the previous 12 mo were moderately correlated, as were the udder health AWI subindicator score and the percentage high somatic cell count (SCC) in the previous 3 recordings. Only negligible or weak correlations were found between the other AWI scores and the on-farm assessment variables. We built Generalized Linear Models using AWI scores as independent variables to predict herds with poorer welfare. Herds were classified as having poorer welfare based on their results in specific on-farm welfare measures. We evaluated the models' predictive ability and accuracy. Moderately accurate models were built for predicting poorer herds with respect to high SCC, mortality, and moderate or severe lameness. The other models were less accurate. The AWI scores were generally unsuitable as replacements of on-farm welfare measures. The AWI subindicators for udder health and mortality could replace the on-farm welfare measures related to those 2 topics, but there was some overlap in the data used to calculate them. Despite a lack of independence, the use of those 2 AWI subindicators may marginally reduce the duration of on-farm assessments. A prediction model based on AWI scores showed potential for identifying herds with poorer welfare in terms of moderate or severe lameness, facilitating more efficient use of resources for on-farm lameness assessment. As a consequence of the data used in the AWI, it was only reflective of health-related welfare outcomes.

摘要

农场福利评估既耗时又昂贵。有人提议使用常规收集的畜群数据来评估福利,作为一种更经济的替代方法。挪威一家乳制品合作社开发的在线动物福利指标(AWI),将一种算法应用于常规收集的健康、生产和管理数据,以“指示”畜群层面动物福利的各个方面。AWI的总体得分基于10个AWI子指标得分,这些得分代表了动物福利的要素,如爪子健康、乳房健康和死亡率。我们的横断面研究探索了AWI可以使挪威奶牛场福利评估更高效的两种方式。首先,我们研究使用AWI通过取代农场实地测量来缩短农场实地评估的持续时间。其次,我们研究通过使用AWI预测哪些畜群在特定农场实地测量方面福利较差,从而减少农场实地福利评估的次数。我们使用斯皮尔曼等级分析,研究了157个畜群的AWI得分是否与通过福利质量评估同时测量的24个农场实地福利变量相关。死亡率AWI子指标得分与前12个月的死亡率百分比呈中度相关,乳房健康AWI子指标得分与前3次记录中的高体细胞计数(SCC)百分比也呈中度相关。在其他AWI得分与农场实地评估变量之间,仅发现了可忽略不计或微弱的相关性。我们使用AWI得分作为自变量建立广义线性模型,以预测福利较差的畜群。根据畜群在特定农场实地福利测量中的结果,将其分类为福利较差。我们评估了模型的预测能力和准确性。建立了中度准确的模型,用于预测高SCC、死亡率和中度或重度跛行方面较差的畜群。其他模型的准确性较低。AWI得分通常不适合替代农场实地福利测量。乳房健康和死亡率的AWI子指标可以替代与这两个主题相关的农场实地福利测量,但用于计算它们的数据存在一些重叠。尽管缺乏独立性,但使用这两个AWI子指标可能会略微缩短农场实地评估的持续时间。基于AWI得分的预测模型显示,在识别中度或重度跛行方面福利较差的畜群方面具有潜力,有助于更有效地利用资源进行农场实地跛行评估。由于AWI中使用的数据,它仅反映了与健康相关的福利结果。

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