利用卷积神经网络设计工业生产中不合适大理石的检测系统

Shubin Ivan, D. Shilin
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引用次数: 0

摘要

到目前为止,计算机视觉和神经网络数据分析正在积极发展,并在工业控制工程中得到越来越多的应用。这些技术现在被用来处理以前没有人类操作员的帮助就无法解决的重要问题。本研究致力于卷积神经网络的选择和配置,以识别传送带上不合适的大理石样本,并创建一个应用程序来定义这些对象的位置。开发了基于YOLOv5神经网络模型的大理石石材分类软件。最终实验的查准率和查全率分别达到0.957和0.947。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing the system for detecting unsuitable marble stones for an industrial process using convolutional neural networks
To the actual date, computer vision and neural network data analysis are actively developing and finding more and more applications in the industrial control engineering. These technologies are now used to deal with important problems that previously could not be solved without the help of a human as an operator. This study is devoted to the selection and configuration of a convolutional neural network for recognizing unsuitable marble samples on a conveyor belt, as well as creating an application for defining the position of these objects. Software for the classification of marble stones based on the YOLOv5 neural network model has been developed. The value of the precision and recall metric in the final experiment reached 0.957 and 0.947, respectively.
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