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Automatic Pedestrians Detection System Based of Features Level Extraction

机译:基于特征水平提取的自动行人检测系统

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The estimation of Crowd density and counting have become mow an interesting area for most of scientists, for instance assessing the social consequence and influence among minor groups of persons inside a crowd. Still, current investigational crowd investigates achieved by workers are costing in term of time. Usually, human is involved to attain this job, yet, increasingly, visual observation is now a vital requirement, it is a tough job to monitor and asses all documented video due to the massive amount of cameras that have been used. Now, image-processing zone has become a concern of all educational and study to improve or investigate new protocol or technique in order to automated and facilitate this task of counting and monitoring with less human intervention. In this paper, novel techniques in that areas have been implemented using different datasets to asses and validate our results. This paper has presented a novel technique which is based on replacing of some global based features with low based level features, which are precise to persons and groups reside in a specific crowd. Therefore, the entire sum of walkers is the total sum of all groups summed together, which build the entire crowd.
机译:人群密度的估计和计数已成为大多数科学家感兴趣的领域,例如,评估人群中少数人群的社会影响和影响。尽管如此,当前由工人完成的调查人群的调查仍在花费时间。通常,要完成这项工作需要人类的参与,然而,视觉观察现在已成为至关重要的要求,由于已使用了大量的摄像头,监视和评估所有记录的视频是一项艰巨的工作。现在,图像处理区已成为所有教育和研究的关注点,以改进或研究新的协议或技术,从而以更少的人工干预实现自动化和便利的计数和监视任务。在本文中,该领域的新技术已使用不同的数据集进行了评估和验证我们的结果。本文提出了一种新颖的技术,该技术基于将某些基于全局的特征替换为低基级别的特征,这些特征对于居住在特定人群中的个人和群体来说是精确的。因此,步行者的总和就是所有群体的总和,从而构成了整个人群。

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