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A Smart Unstaffed Retail Shop Based on Artificial Intelligence and IoT

机译:基于人工智能和物联网的聪明的零售商店

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Unstaffed retail shop has been emerging in the past years and significantly affected conventional shopping styles. In this area, unmanned retail container plays an important role, it can greatly influence the user shopping experience, the traditional way based on weighing sensors cannot sense what the customer is taking. This paper proposes a smart unstaffed retail shop scheme based on artificial intelligence (AI) and the internet of things (IoT), aiming at exploring the feasibility of implementing the unstaffed retail shopping style. Based on the data set of 11, 000 images in different scenarios that containing 10 different types of stock keeping unit (SKU), an end-to-end classification model trained by the MASK-RCNN method is developed for SKU counting and recognition, and the proposed solution in this study is able to achieve 97.7% counting accuracy and 98.7% recognition accuracy on the test dataset, which indicates that the system can make up for the deficiency of traditional unmanned container.
机译:过去几年零售商店一直在出现并显着影响传统购物款式。在这个领域,无人零售容器发挥着重要作用,它可以大大影响用户购物体验,传统的基于称重传感器的方式都无法感知客户正在服用什么。本文提出了一种基于人工智能(AI)和物联网(物联网)的聪明的零售店计划,旨在探索实施不安全的零售购物风格的可行性。基于包含10种不同类型的股票保持单元(SKU)的不同场景中的数据集11,000图像,由掩模-RCNN方法训练的端到端分类模型用于SKU计数和识别,以及该研究中提出的解决方案能够在测试数据集中达到97.7%的计数准确度和98.7%的识别准确性,这表明该系统可以弥补传统无人容器的缺陷。

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