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Evaluation of three-dimensional accelerometers to monitor and classify behavior patterns in cattle

机译:评估用于监测和分类牛行为模式的三维加速度计

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Cattle behavior is potentially a Valuable indicator of health and well-being; however, natural movement patterns can be influenced by the presence of a human observer. A remote system could augment the ability of researchers, and eventually cattle producers, to monitor changes in cattle behavior. Constant video surveillance allows non-invasive behavior monitoring, but logging the movement patterns on individual animals over long periods of time is often cost prohibitive and labor intensive. Accelerometers record three-dimensional movement and could potentially be used to remotely monitor cattle behavior. These devices collect data based on pre-defined recording intervals, called epochs. Our objectives were to (1) determine if accelerometers can accurately document cattle behavior and (2) identify differences in classification accuracy among accelerometer epoch settings. Video-recorded observations and accelerometer data were collected from 15 crossbred beef calves and used to generate classification trees that predict behavior based on accelerometer data. Postural orientations were classified as lying or standing, while dynamic activities were classified as walking or a transition between activities. Video analysis was treated as the gold standard and logistic regression models were used to determine classification accuracy related to each activity and epoch setting. Classification of lying and standing activities by accelerometer illustrated excellent agreement with video (99.2% and 98.0% respectively); while walking classification accuracy was significantly (P < 0.01) lower (67.8%). Classification agreement was higher in the 3 s (98.1%) and 5 s (97.7%) epochs compared to the 10 s (85.4%) epoch. Overall, we found the accelerometers provided an accurate, remote measure of cattle behavior over the trial period, but that classification accuracy was affected by the specific behavior monitored and the reporting interval (epoch).
机译:牛的行为可能是健康和福祉的重要指标;但是,自然运动的模式会受到人类观察者在场的影响。远程系统可以增强研究人员以及最终养牛者监测牲畜行为变化的能力。持续的视频监视可进行非侵入性行为监视,但是长时间记录单个动物的运动模式通常成本高昂且劳动强度大。加速度计记录三维运动,可以潜在地用于远程监视牛的行为。这些设备基于预定义的记录间隔(称为时期)收集数据。我们的目标是(1)确定加速度计是否可以准确记录牛的行为,以及(2)识别加速度计历时设置之间分类精度的差异。从15个杂交牛犊收集视频记录的观察结果和加速度计数据,并将其用于生成基于加速度计数据预测行为的分类树。姿势取向分为躺着或站立,而动态活动则分为步行或活动之间的过渡。视频分析被视为黄金标准,并使用逻辑回归模型来确定与每个活动和时代设置相关的分类准确性。通过加速度计对躺卧和站立活动的分类显示与视频的一致性极好(分别为99.2%和98.0%);而步行分类的准确性显着降低(P <0.01)(67.8%)。在3 s(98.1%)和5 s(97.7%)时期中的分类一致性高于10 s(85.4%)时期。总体而言,我们发现加速度计在试验期内提供了牛行为的准确,远程测量,但分类精度受所监视的特定行为和报告间隔(时期)的影响。

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