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Application of CNN-Based Method for Automatic Detection and Classification of the IC Packages

机译:基于CNN的IC封装自动检测方法的应用

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Automatic detection and classification of integrated circuits' packages is one of the methods supporting the traditional production of electronic parts based on through-hole technology, typical for Printed Circuit Boards (PCBs), utilizing the advantages of modern machine vision solutions. As a result of the growing availability of cameras and 3D printers, as well as the popularity of IoT systems, prototyping of some electronic circuits with the use of simpler robotic systems may be supported by an automatic analysis of electronic components based on machine vision. Considering recent advances in the applications of Convolutional Neural Networks (CNNs) in computer vision, their applicability for this task has been analyzed and experimentally verified in this paper, also in comparison to previously proposed approach based on handcrafted features.
机译:集成电路包的自动检测和分类是支持基于通孔技术的传统电子部件生产的方法之一,典型的印刷电路板(PCB),利用现代机视觉解决方案的优势。由于摄像机和3D打印机的不断增加,以及IOT系统的普及,可以通过基于机器视觉的电子元件的自动分析来支持使用更简单的机器人系统的一些电子电路的原型。考虑到卷积神经网络(CNNS)在计算机愿景中的应用中的近期进步,在本文中已经分析并通过基于手工特征的先前提出的方法进行了分析和实验验证了它们对此任务的适用性。

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