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Analysis of Motion Patterns for Pain Estimation of Horses

机译:马疼痛估计的运动模式分析

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This paper focuses on the automated analysis of motion patterns for relating an individual's behaviour with its pain experience. Reliable, automated behaviour analysis can improve video observation considerably, i.e. by lessening the work load of human operators, decreasing human error and by increasing anonymity and privacy. Possible applications are observation of traffic, public places and public transport. A new potential application is the early detection of pathologically relevant events, e.g. animal diseases (e.g. colics in horses), the automated post-surgical pain assessment of animals and similar applications. The challenge in the horses scenario is that they are flight animals that can not afford much of visible pain behaviour.Our approach is built on top of state of the art methods for object detection and tracking. From the object motion we derive motion patterns and respective features which we analyse by machine-learning methods. In the this paper we will present atypical behaviour detection (i.e. pain estimation) in animal videos, for which we have acquired a large video database. It could be shown that the condition of the horse can be analysed and classified by means of local histograms.
机译:本文着重于运动模式的自动分析,以将一个人的行为与其痛苦经历联系起来。可靠的自动化行为分析可以显着改善视频观看效果,例如,通过减轻操作员的工作量,减少人为错误并提高匿名性和隐私性来实现。可能的应用是观察交通,公共场所和公共交通。一种新的潜在应用是及早发现病理相关事件,例如动物疾病(例如马的绞痛),动物的手术后自动化疼痛评估以及类似的应用。在马场景中,挑战在于它们是无法承受很多可见疼痛行为的飞行动物。我们的方法建立在用于对象检测和跟踪的最先进方法之上。从物体的运动中,我们得出运动模式和相应的特征,然后通过机器学习方法对其进行分析。在本文中,我们将介绍动物视频中的非典型行为检测(即疼痛估计),为此我们已经获得了一个大型视频数据库。可以证明,可以通过局部直方图对马的状况进行分析和分类。

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