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首页> 外文期刊>Royal Society Open Science >Automated detection of lameness in sheep using machine learning approaches: novel insights into behavioural differences among lame and non-lame sheep
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Automated detection of lameness in sheep using machine learning approaches: novel insights into behavioural differences among lame and non-lame sheep

机译:使用机器学习方法自动检测羊在绵羊中的跛足:跛脚和非跛脚绵羊行为差异的新颖洞察

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Lameness in sheep is the biggest cause of concern regarding poor health and welfare among sheep-producing countries. Best practice for lameness relies on rapid treatment, yet there are no objective measures of lameness detection. Accelerometers and gyroscopes have been widely used in human activity studies and their use is becoming increasingly common in livestock. In this study, we used 23 datasets (10 non-lame and 13 lame sheep) from an accelerometer- and gyroscope-based ear sensor with a sampling frequency of 16 Hz to develop and compare algorithms that can differentiate lameness within three different activities (walking, standing and lying). We show for the first time that features extracted from accelerometer and gyroscope signals can differentiate between lame and non-lame sheep while standing, walking and lying. The random forest algorithm performed best for classifying lameness with an accuracy of 84.91% within lying, 81.15% within standing and 76.83% within walking and overall correctly classified over 80% sheep within activities. Both accelerometer- and gyroscope-based features ranked among the top 10 features for classification. Our results suggest that novel behavioural differences between lame and non-lame sheep across all three activities could be used to develop an automated system for lameness detection.
机译:绵羊的跛足是绵羊生产国中健康和福利不良的最大原因。跛足的最佳实践依赖于快速处理,但没有客观的跛足检测措施。加速度计和陀螺仪已广泛用于人类活动研究,其使用在牲畜中越来越常见。在这项研究中,我们使用了来自加速度计和陀螺仪的耳传感器的23个数据集(10个非跛足和13个铅羊),采样频率为16 Hz,以开发和比较可以在三种不同活动中区分跛足的算法(步行,站立和撒谎)。我们首次展示了从加速度计和陀螺仪信号中提取的特征可以区分跛脚和非跛脚的绵羊,而行走和撒谎。随机森林算法最适合分类跛足,精度在躺下的准确度,81.15%内,步行内的76.83%,在活动中,在活动中持续超过80%的羊群。加速度计和基于陀螺仪的特征在于分类的前10个功能中。我们的研究结果表明,所有三种活动的跛脚和非跛脚绵羊之间的新行为差异可用于开发用于跛足检测的自动化系统。

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