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Partially Covered Face Detection in Presence of Headscarf for Surveillance Applications

机译:用于监视应用的头巾存在时的部分遮盖脸部检测

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In the past few years, the application of surveillance for security and smart cities are growing rapidly. The human detection based on the surveillance videos is a complex task and traditional clothing such as headscarf makes this task even more difficult. The surveillance systems designed for many countries are required to be able to recognize the people with these traditional clothing. In this paper, a computer vision system for partially covered face detection in low resolution surveillance videos containing traditional Middle Eastern clothing including the headscarf is presented. The proposed framework uses a combination of Haar cascade and Locally Binary Patterns Histogram (LBPH) for feature extraction and the Support Vector Machine (SVM) algorithm for face classification. A large dataset of a crowded office environment in Middle East is collected and used for evaluation of the proposed model. The experimental results show that the proposed method has acceptable results for face detection in complex surveillance scenarios.
机译:在过去的几年中,监视在安全和智能城市中的应用正在迅速增长。基于监视视频进行人类检测是一项复杂的任务,而传统的服装(例如头巾)使这一任务更加困难。需要为许多国家设计的监视系统能够识别穿着这些传统服装的人。在本文中,提出了一种计算机视觉系统,用于在包含传统中东服装(包括头巾)的低分辨率监视视频中部分遮盖面部检测。所提出的框架结合了Haar级联和局部二值模式直方图(LBPH)进行特征提取和支持向量机(SVM)算法进行人脸分类的功能。收集了中东拥挤的办公环境的大型数据集,并将其用于评估所提出的模型。实验结果表明,该方法在复杂监控场景下的人脸检测具有可接受的效果。

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