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Incidence validation and relationship analysis of producer-recorded health event data from on-farm computer systems in the United States

机译:美国农场计算机系统中生产者记录的健康事件数据的发生率验证和关系分析

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摘要

The principal objective of this study was to analyze the plausibility of health data recorded through on-farm recording systems throughout the United States. Substantial progress has been made in the genetic improvement of production traits while health and fitness traits of dairy cattle have declined. Health traits are generally expensive and difficult to measure, but health event data collected from on-farm computer management systems may provide an effective and low-cost source of health information. To validate editing methods, incidence rates of on-farm recorded health event data were compared with incidence rates reported in the literature. Putative relationships among common health events were examined using logistic regression for each of 3 timeframes: 0 to 60, 61 to 90, and 91 to 150 d in milk. Health events occurring on average before the health event of interest were included in each model as predictors when significant. Calculated incidence rates ranged from 1.37% for respiratory problems to 12.32% for mastitis. Most health events reported had incidence rates lower than the average incidence rate found in the literature. This may partially represent underreporting by dairy farmers who record disease events only when a treatment or other intervention is required. Path diagrams developed using odds ratios calculated from logistic regression models for each of 13 common health events allowed putative relationships to be examined. The greatest odds ratios were estimated to be the influence of ketosis on displaced abomasum (15.5) and the influence of retained placenta on metritis (8.37), and were consistent with earlier reports. The results of this analysis provide evidence for the plausibility of on-farm recorded health information.
机译:这项研究的主要目的是分析在整个美国通过农场记录系统记录的健康数据的合理性。生产性状的遗传改良已取得实质性进展,而奶牛的健康和健身性状却有所下降。健康特征通常很昂贵且难以衡量,但是从农场计算机管理系统收集的健康事件数据可能会提供有效且低成本的健康信息来源。为了验证编辑方法,将农场记录的健康事件数据的发生率与文献中报道的发生率进行了比较。使用逻辑回归分析了三个时间范围(牛奶中0到60天,61到90天和91到150天)中每个时间框架之间的常见健康事件之间的推定关系。每个模型中都将平均在关注健康事件之前发生的健康事件作为重要的预测变量。计算出的发病率从呼吸系统疾病的1.37%到乳腺炎的12.32%不等。报告的大多数健康事件的发生率均低于文献中的平均发生率。这可能部分代表仅在需要治疗或其他干预措施时才记录疾病事件的奶农报告不足。使用从Logistic回归模型计算的13种常见健康事件中每一个的比值比开发的路径图允许检查推定的关系。估计最大的优势比是酮症对移位的厌恶的影响(15.5)和保留的胎盘对子宫炎的影响(8.37),与早期报道一致。该分析的结果为农场记录的健康信息的合理性提供了证据。

著录项

  • 来源
    《Journal of dairy science》 |2012年第9期|p.5422-5435|共14页
  • 作者单位

    Department of Animal Science, North Carolina State University, Raleigh 27695;

    Animal Improvement Programs Laboratory, Agricultural Research Service, USDA, Beltsville, MD 20705-2350;

    Dairy Records Management Systems, Raleigh, NC 27603;

    Department of Animal Science, North Carolina State University, Raleigh 27695;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dairy cattle; health; path analysis;

    机译:乳牛;健康;路径分析;
  • 入库时间 2022-08-17 23:24:27

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