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Freedom to lie: How farrowing environment affects sow lying behaviour assessment using inertial sensors

机译:谎言自由:利用惯性传感器如何影响母猪撒式行为评估

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摘要

We address the use of accelerometery to automatically monitor lying behaviour in free-farrowing sows; due to their freedom of movement and the consequent increased variety of movements the sows are able to exhibit, the challenges in automating this are greater than in sows housed in movement restricting farrowing environments. The methodology developed was applied to two salient applications: that of farrowing prediction through detection of nest building activity, and comparison of maternal lying behaviour in conventional movement-restricting and free-farrowing systems. Two sensors were attached at both the front and hind end to each of eight periparturient sows. Movement behaviour was recorded for a period of five days around parturition. Activity transitions were classified by a Support Vector Machine classifier, using data from both sensors individually, and combined; classifier output was validated against ground truth annotations collected from video data. We draw conclusions about the benefits of using multiple sensors over a single sensor, as well as the suitability of different sensor locations on the sow. Activity classification was found to improve through the use of multiple sensors, with a mean F-1 score (a measure of predictive performance between 0 and 1) of 0.84, compared to use of the front sensor alone (mean F-1 = 0.49) and the hind sensor alone (mean F-1 = 0.57). Activity transitions were classified using the dual sensor setup with a mean F-1 score of 0.77. Using a threshold-based approach, taking transition frequency as an indicator of nesting behaviour, we were able to detect the onset of nest building with an average latency to farrowing of 11.1 (+/- 4.65) hours, and an average of 1 premature detection per sow; however, the majority of these premature were in a particular sow. We draw comparisons between the lying behaviour of free-farrowing and restricted sows. Using a mixed-design ANOVA we found a main effect of farrowing environment on transition duration (p = 0.003), peak acceleration (p = 0.007) and rate of change in pitch (p = 0.009). Improving the classification accuracy of sow activity transitions through the addition of multiple sensors allows for improved performance in applications such as farrowing prediction, which has the capacity to reduce piglet mortality through enabling farrowing supervision. Understanding how movement restriction affects the lying behaviour of farrowing sows has the potential to inform decisions regarding restriction of sows and development of free-farrowing environments.
机译:我们解决了加速度的使用,以自由训练母猪自动监测撒谎行为;由于他们的运动自由和随之而来的各种动作,母猪能够展示,自动化的挑战大于容纳在运动环境中的运动的母猪。所开发的方法应用于两个突出的应用:通过检测巢建筑物活动的训练预测,以及在传统运动限制和自由分娩系统中的母体撒谎行为的比较。两个传感器在前端和后端连接到八个围网母猪中的每一个。在分娩周围的5天录制运动行为。通过支持向量机分类器分类活动转换,单独使用来自两个传感器的数据,并组合;对从视频数据收集的地面真理注释进行了验证了分类器输出。我们得出关于在单个传感器上使用多个传感器的益处的结论,以及在母猪上的不同传感器位置的适用性。发现活动分类通过使用多个传感器来改善,平均f-1分数(0到1之间的预测性能的度量),与单独的前传感器的使用相比(平均f-1 = 0.49)单独的后传感器(平均值F-1 = 0.57)。使用双传感器设置分类活动转换,平均f-1分数为0.77。使用基于阈值的方法,将过渡频率作为嵌套行为的指标,我们能够检测巢建筑的展开,平均延迟为11.1(+/- 4.65)小时,平均1次过早检测每母猪;然而,这些早产的大部分都在特定的母猪中。我们利用自由击球和限制母猪的撒谎行为之间的比较。使用混合设计Anova,我们发现了用于过渡持续时间的训练环境的主要效果(P = 0.003),峰值加速度(P = 0.007)和间距的变化率(p = 0.009)。通过添加多个传感器提高母猪活动转换的分类精度允许在诸如划分的应用中的应用中的性能提高,这具有通过使击沉监督能够降低仔猪死亡率的能力。了解运动限制如何影响击球母猪的撒谎行为有可能为有关限制母猪和自由训练环境的发展的决定提供促进决策。

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  • 作者单位

    Newcastle Univ Open Lab Urban Sci Bldg Newcastle Upon Tyne NE4 5TG Tyne &

    Wear England;

    Newcastle Univ Open Lab Urban Sci Bldg Newcastle Upon Tyne NE4 5TG Tyne &

    Wear England;

    Newcastle Univ Open Lab Urban Sci Bldg Newcastle Upon Tyne NE4 5TG Tyne &

    Wear England;

    Newcastle Univ Agr Sch Nat &

    Environm Sci Newcastle Upon Tyne Tyne &

    Wear England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农业科学;
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