基于视觉的幼儿在家跟踪

H. Na, S. Qin, D. Wright
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引用次数: 2

摘要

本文提出了一种基于视觉的幼儿跟踪系统,用于检测幼儿在家庭环境中跌倒的危险因素。危险因素有环境和行为两个方面,本文主要从行为两个方面进行研究。除了常见的图像处理任务,如背景减除,基于视觉的幼儿跟踪涉及人类分类,获取运动和位置信息,以及处理区域合并和分割。人体分类是基于人体的动态运动向量。检测每个轮廓的质心,并将其与最近的下一帧的质心相连,从而获得位置、速度和方向信息。该跟踪系统通过处理由多目标遮挡引起的区域合并和分裂进一步增强。为了识别合并和分裂,在每两个连续帧之间进行两次最近区域中心的方向检测。由于背景减法中的错误而导致的单个对象的合并和分割也被处理。跟踪算法已经开发,实施和测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vision-Based Toddler Tracking at Home
This paper presents a vision-based toddler tracking system for detecting risk factors of a toddler's fall within the home environment. The risk factors have environmental and behavioral aspects and the research in this paper focuses on the behavioral aspects. Apart from common image processing tasks such as background subtraction, the vision-based toddler tracking involves human classification, acquisition of motion and position information, and handling of regional merges and splits. The human classification is based on dynamic motion vectors of the human body. The center of mass of each contour is detected and connected with the closest center of mass in the next frame to obtain position, speed, and directional information. This tracking system is further enhanced by dealing with regional merges and splits due to multiple object occlusions. In order to identify the merges and splits, two directional detections of closest region centers are conducted between every two successive frames. Merges and splits of a single object due to errors in the background subtraction are also handled. The tracking algorithms have been developed, implemented and tested.
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