智能果篮

Pulkit Narwal, Ipsita Pattnaik
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引用次数: 0

摘要

本文讨论了智能零售解决方案,特别是自助结账商店。由于基于RFID标签的产品识别存在各种局限性,作者提出了一种基于多视图图像识别和重量传感器的智能篮子,以促进水果和蔬菜的自助结账机制。该系统工作在一个多视图模型上,并从四个相机视图中识别和计数水果/蔬菜,以处理遮挡。用户将水果放入篮子中。安装在篮子里的多个摄像头提供了不同的视角,并捕捉到了水果放置的过程。然后使用CNN(卷积神经网络)处理不同的视图进行图像识别。作者还提出了一个多视图水果识别(MVFR)数据集来评估系统的性能。智能篮的底座包括一个重量传感器,用于计算水果的重量信息、重量和计数信息,辅助自助结账站的账单生成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smart Fruit Basket
This paper discusses smart retailing solutions, self-checkout stores in particular. Since RFID tag-based product identification accounts for various limitations, the authors propose a smart basket to facilitate self-checkout mechanism for fruits and vegetables, based on multi-view image recognition and weight sensor. The system works on a multi-view model and recognizes and counts the fruit/vegetables from four camera views to handle the occlusions. The user places fruits inside the basket. Multiple cameras installed provide different views inside the basket and captures this fruit placing activity. Different views are then processed for image recognition using CNN (convolutional neural network). The authors also present a multi-view fruit recognition (MVFR) dataset to evaluate the system performance. The base of smart basket includes a weight sensor to account for weight information, the weight, and count information of fruit assist in bill generation at self-checkout station.
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