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A real-time fine-grained visual monitoring system for retail store auditing

机译:实时细粒度视觉监控系统,用于零售店审计

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Automated visual analysis of the object is of prime importance to realize the real-time concept of the internet of things. In this paper, we proposed a real-time fine grained visual analytics system for tracing the visibility of products on retail store shelves. The proposed visual monitoring system (VMS) is aimed to achieve high rates of product recognition, regardless of several real-time challenges like occlusion, different lightening conditions, product orientation etc. To address all these issues, the VMS collects the local feature descriptors which are scale invariant, rotational invariant and illumination invariant from training template images. Once, the testing image uploaded from any camera enabled device, the VMS extracts same local features and matches with the target feature descriptors for fine-grained object recognition. This paper also covers the performance of various state-of-the-art local feature descriptors for object detection in context of retail store monitoring/tracking. The performance of the VMS is tested on real time retail shelve images. The results after investigation, the proposed fine-grained VMS shows approximately 90% accuracy in brand level detection.
机译:对对象进行自动视觉分析对于实现物联网的实时概念至关重要。在本文中,我们提出了一种实时细粒度的视觉分析系统,用于跟踪零售商店货架上产品的可见性。拟议的视觉监控系统(VMS)旨在实现较高的产品识别率,而不受诸如遮挡,不同的光照条件,产品方向等几个实时挑战的影响。为解决所有这些问题,VMS收集了本地特征描述符,是训练模板图像的尺度不变,旋转不变和照度不变。从任何启用了摄像头的设备上载测试图像后,VMS都会提取相同的本地特征并与目标特征描述符匹配,以实现细粒度的对象识别。本文还介绍了在零售商店监视/跟踪环境中用于对象检测的各种最新本地特征描述符的性能。 VMS的性能已在实时零售货架图像上进行了测试。经过调查的结果,提出的细粒度VMS在品牌水平检测中显示出大约90%的准确性。

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