Application of a depth image analysis algorithm to automatic social behaviour estimation of laboratory animals

A. Victor
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Abstract

The problem of animal social behavior estimation has two components: automatically tracking a number of identical objects with a large number of collisions and calculating indexes for behavior description. In this paper a tracking algorithm has been proposed for a sequence of depth images. This algorithm combines detection and tracking methods. The proposed algorithm is highly reliable: in the worst case it yields one error per 193 collisions. Several useful automatically estimated indexes for social behavior were introduced in this paper.
一种深度图像分析算法在实验动物社会行为自动估计中的应用
动物社会行为估计问题包括两个部分:自动跟踪具有大量碰撞的相同物体数量和计算行为描述指标。本文提出了一种深度图像序列的跟踪算法。该算法结合了检测和跟踪两种方法。所提出的算法是高度可靠的:在最坏的情况下,每193次碰撞产生一个错误。本文介绍了几种有用的社会行为自动估计指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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