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Human identification system based on moment invariant features

机译:基于不变矩特征的人体识别系统

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Video surveillance is an active research topic in computer vision. Recent research in video surveillance system has shown an increasing focus on creating reliable systems utilizing non-computationally expensive technique for detecting and observing humans' appearance, movements and activities. In this paper, we present a human identification technique suitable for video surveillance. The technique we propose includes background subtraction, foreground segmentation, feature extraction and classification. First of all, we extract all foreground objects from the background. Then, we perform a morphological reconstruction algorithm to recover the distorted foreground objects. The feature extraction is done using affine moment invariants of full body and head-shoulder of the extracted foreground objects and these were used to identify human. When the partial occlusion occurs, although feature of full body cannot be extracted, still the features of head shoulder can be extracted. Thus, it has a better classification on solving the issue of the loss of property arising from human occluded easily in practical applications. The experiment results show that this method is effective, and it has strong robustness.
机译:视频监视是计算机视觉中一个活跃的研究主题。视频监视系统的最新研究表明,越来越重视使用非计算昂贵的技术来创建可靠的系统,以检测和观察人类的外表,动作和活动。在本文中,我们提出了一种适用于视频监控的人类识别技术。我们提出的技术包括背景减法,前景分割,特征提取和分类。首先,我们从背景中提取所有前景对象。然后,我们执行形态重建算法以恢复失真的前景对象。使用提取的前景对象的全身和头部的仿射矩不变式完成特征提取,并将这些用于识别人。当发生部分闭塞时,尽管无法提取出全身特征,但仍可以提取出头肩的特征。因此,在解决因在实际应用中容易被人遮挡而引起的财产损失问题时,它具有更好的分类。实验结果表明该方法有效,鲁棒性强。

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