Recovering People Tracking Errors Using Enhanced Covariance-Based Signatures

Julien Badie, Sławomir Bąk, S. Şerban, F. Brémond
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引用次数: 14

Abstract

This paper presents a new approach for tracking multiple persons in a single camera. This approach focuses on recovering tracked individuals that have been lost and are detected again, after being miss-detected (e.g. occluded) or after leaving the scene and coming back. In order to correct tracking errors, a multi-cameras re-identification method is adapted, with a real-time constraint. The proposed approach uses a highly discriminative human signature based on covariance matrix, improved using background subtraction, and a people detection confidence. The problem of linking several tracklets belonging to the same individual is also handled as a ranking problem using a learned parameter. The objective is to create clusters of tracklets describing the same individual. The evaluation is performed on PETS2009 dataset showing promising results.
使用增强的基于协方差的签名恢复人员跟踪错误
本文提出了一种在单个摄像机中跟踪多人的新方法。这种方法的重点是恢复被跟踪的人已经丢失并再次被检测到,在未被检测到(例如闭塞)或离开现场后回来。为了纠正跟踪误差,采用了一种具有实时性约束的多摄像机再识别方法。该方法采用基于协方差矩阵的高判别性人类特征,利用背景减法进行改进,并采用人检测置信度。连接属于同一个体的多个轨道的问题也作为使用学习参数的排序问题来处理。目标是创建描述同一个人的轨迹集。在PETS2009数据集上进行了评估,结果令人满意。
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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