Person specific activity recognition using fuzzy learning and Discriminant Analysis

Alexandros Iosifidis, A. Tefas, I. Pitas
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引用次数: 13

Abstract

One of the major issues that activity recognition methods should be able to face is the style variations observed in the execution of activities performed by different humans. In order to address this issue we propose a person-specific activity recognition framework in which human identification proceeds activity recognition. After recognizing the ID of the human depicted in a video stream, a person-specific activity classifier is responsible to recognize the activity performed by the human. Exploiting the enriched human body information captured by a multi-camera setup, view-invariant person and activity representations are obtained. The classification procedure involves Fuzzy Vector Quantization and Linear Discriminant Analysis. The proposed method is applied on drinking and eating activity recognition as well as on other activity recognition tasks. Experiments show that the person-specific approach outperforms the person-independent one.
基于模糊学习和判别分析的人物特定活动识别
活动识别方法应该能够面对的主要问题之一是在不同人执行活动时观察到的风格变化。为了解决这个问题,我们提出了一个特定于人的活动识别框架,其中人类识别进行活动识别。在识别视频流中描述的人的ID之后,特定于人的活动分类器负责识别由人执行的活动。利用多摄像机捕获的丰富的人体信息,获得了视点不变的人物和活动表示。分类过程包括模糊向量量化和线性判别分析。该方法不仅适用于饮食活动识别,也适用于其他活动识别任务。实验表明,针对个人的方法优于与个人无关的方法。
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