利用掩模r-cnn自动分析羊的行为

Jingsong Xu, Qiang Wu, Jian Zhang, Amy Tait
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引用次数: 7

摘要

最近,活羊出口过程中的羊福利问题引发了公众的广泛关注。目前正在进行广泛的研究,以监测和改善动物福利。在出口期间,放养密度可能是影响绵羊福利的关键因素,其影响可以通过羊的行为、位置、群体动态和生理来监测。在本文中,我们演示了实例分割方法Mask R-CNN在绵羊行为识别中的应用。作为第一步,随着时间的推移,在不同的群体规模下,人们认识到站立和躺着两种典型的行为。在验证集中达到94%+ mAP,证明了该方法在识别绵羊行为方面的有效性。进一步的数据分析将为额外的羊分配和日常行为监测提供可用空间需求,以发现异常情况,旨在改善船上羊的健康和福祉。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AUTOMATIC SHEEP BEHAVIOUR ANALYSIS USING MASK R-CNN
The issue of sheep welfare during live exports has triggered a lot of public concern recently. Extensive research is being carried out to monitor and improve animal welfare. Stocking density can be a critical factor affecting sheep welfare during export and its impact can be monitored through sheep behaviour, position, group dynamics and physiology. In this paper we demonstrate the application of the instance segmentation method Mask R-CNN to support sheep behaviour recognition. As an initial step, two typical behaviours standing and lying are recognized under different group sizes in pens over time. 94%+ mAP was achieved in the validation set demonstrating the effectiveness of the method on identifying sheep behaviours. Further data analysis will provide available space requirements for additional sheep allocation and daily behaviour monitoring to detect abnormal cases which will aim to improve the health and wellbeing of sheep on ships.
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