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Classification of the marking on integrated circuit chips based on moments and projection profile - a comparison

机译:基于力矩和投影轮廓的集成电路芯片上标记的分类-比较

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摘要

In this paper, an Industrial machine vision system incorporating Optical Character Recognition (OCR) is employed to inspect the marking on the Integrated Circuit (IC) Chips. This inspection is carried out while the ICs are coming out from the manufacturing line. A TSSOP-DGG type of IC package from Texas Instrument is used in the investigation. The IC chips are laser printed. This inspection system ensures whether the laser printed marking on IC chips are proper. One of the artificial intelligence components the neural network, is used for inspection. The inspections are carried out to find the print errors such as illegible character, missing characters and up side down printing. The vision inspection of the printed markings on the IC chip are carried out in three phases namely image preprocessing, feature extraction and classification. MATLAB platform and its toolboxes are used for designing the inspection processing technique. Neural network is used as a classifier to detect the defectively marked IC chips coming from the manufacturing line. In neural network, feature extracted from moments and projection profile are used for inspection. Both feature extraction methods are compared in terms of marking inspection time.
机译:在本文中,采用了集成了光学字符识别(OCR)的工业机器视觉系统来检查集成电路(IC)芯片上的标记。这些检查是在IC从生产线中取出时进行的。德州仪器(TI)的TSSOP-DGG类型的IC封装用于调查。 IC芯片是激光打印的。该检查系统可确保IC芯片上的激光打印标记是否正确。神经网络是人工智能的组成部分之一,用于检查。进行检查以发现打印错误,例如字符模糊,字符丢失和打印面朝下。对IC芯片上印刷标记的视觉检查分三个阶段进行,即图像预处理,特征提取和分类。 MATLAB平台及其工具箱用于设计检查处理技术。神经网络用作分类器,以检测来自生产线的标记有缺陷的IC芯片。在神经网络中,从弯矩和投影轮廓提取的特征用于检查。比较两种特征提取方法的标记检查时间。

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