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Deep Learning based approach to detect Customer Age, Gender and Expression in Surveillance Video

机译:基于深度学习的方法来检测监控视频中的客户年龄,性别和表情

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摘要

In the current information era, customer analytics play a key role in the success of any business. Since customer demographics primarily dictate their preferences, identification and utilization of age & gender information of customers in sales forecasting, may maximize retail sales. In this work, we propose a computer vision based approach to age and gender prediction in surveillance video. The proposed approach leverage the effectiveness of Wide Residual Networks and Xception deep learning models to predict age and gender demographics of the consumers. The proposed approach is designed to work with raw video captured in a typical CCTV video surveillance system. The effectiveness of the proposed approach is evaluated on real-life garment store surveillance video, which is captured by low resolution camera, under non-uniform illumination, with occlusions due to crowding, and environmental noise. The system can also detect customer facial expressions during purchase in addition to demographics, that can be utilized to devise effective marketing strategies for their customer base, to maximize sales.
机译:在当前的信息时代,客户分析在任何业务的成功中都起着关键作用。由于客户的人口统计信息主要决定了他们的偏好,因此在销售预测中识别和利用客户的年龄和性别信息可以最大程度地提高零售量。在这项工作中,我们提出了一种基于计算机视觉的方法来监视视频中的年龄和性别。拟议的方法利用了广泛的残差网络和Xception深度学习模型的有效性来预测消费者的年龄和性别人口统计。提出的方法旨在与在典型CCTV视频监视系统中捕获的原始视频一起使用。该方法的有效性在真实服装商店监控视频上进行了评估,该视频由低分辨率摄像头在不均匀照明下捕获,由于拥挤和环境噪声而被遮挡。除了人口统计信息外,该系统还可以检测购买过程中的客户面部表情,这些信息可以用来为他们的客户群设计有效的营销策略,以最大程度地提高销售量。

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