Model of human clothes based on saliency maps

S. Hommel, Darius Malysiak, U. Handmann
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引用次数: 5

Abstract

In this paper, we describe a method to model human clothes for a later recognition by the use of RGB- and SWIR-cameras. A basic model is estimated during people detection and tracking. This model will be refined if the recognition is triggered. For the refining, several saliency maps are used to extract individual features. These individual features are located separately for any human body parts. The body parts are estimated by the use of a silhouette extraction combined with a skeleton estimation. In this way, the model describes the human clothes in a compact manner which allows the use of a simple and fast comparison method for people recognition. Such models can be used in security and service applications.
基于显著性地图的人体服装模型
在本文中,我们描述了一种使用RGB和swr相机对人体服装进行后期识别的方法。在人的检测和跟踪过程中估计出一个基本模型。如果识别被触发,这个模型将被改进。为了进行细化,我们使用了几个显著性图来提取单个特征。这些单独的特征对于任何人体部位都是分开的。利用轮廓提取和骨架估计相结合的方法对人体部位进行估计。这样,该模型就可以紧凑地描述人体的服装,从而可以使用一种简单快速的对比方法进行人物识别。这些模型可用于安全和服务应用程序。
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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