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Robust Estimation of Product Amount on Store Shelves from a Surveillance Camera for Improving On-Shelf Availability

机译:通过监视摄像机对货架上的产品数量进行可靠的估算,以提高货架可用性

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This paper proposes a method to robustly estimate product amount on store shelves from a surveillance camera for improving on-shelf availability. We focus on changes of products on the shelves such as “product taken (decrease)” and “product replenished/returned (increase)”, and compute product amount by accurately accumulating them. The proposed method first detects change regions of products on the shelves in an image using background subtraction followed by moving object removal. The detected change regions are then classified into several classes representing the actual changes on the shelves such as “product taken” by using convolutional neural networks. Finally, the changes of products on the shelves are accumulated using classification results, and product amount on the shelves visible in the image is computed as on-shelf availability. Experimental results using two videos captured in a real store show that our method achieves success rate of 89.6% for on-shelf availability when an error margin is within one product. With high accuracy, store clerks can keep high on-shelf availability, enabling the improvement of business profit in retail stores.
机译:本文提出了一种方法,可以通过监控摄像头可靠地估计货架上的产品数量,以提高货架上的可用性。我们着眼于货架上的产品变化,例如“已拿出(减少)的产品”和“增补/退还(增加)的产品”,并通过准确地累计它们来计算产品数量。所提出的方法首先使用背景减法然后移动物体去除来检测图像中货架上产品的变化区域。然后,通过使用卷积神经网络将检测到的变化区域分类为几个类别,分别代表货架上的实际变化,例如“获取的产品”。最后,使用分类结果来累积货架上产品的变化,并将图像中可见货架上的产品数量计算为货架上的可用性。使用在真实商店中捕获的两个视频的实验结果表明,当误差范围在一个产品之内时,我们的方法在货架上可获得的成功率达到89.6%。店员的准确性很高,可以保持较高的货架可用性,从而可以提高零售店的业务利润。

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