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作 者:林佳 王海明[1] 于乃功 孙彬[1] 郝靖[1] in Jia 1,Wang Haiming 1,Yu Naigong 2,Sun Bin 1,Hao Jing 1(1.No.45 Research Institute of China Electronics Technology Group Corporation, Beijing 100176, China;2.Faculty of Information Technology, Beijing University of Technology, Beijing 100124, Chin)
机构地区:[1]中国电子科技集团公司第四十五研究所,北京经开区100176 [2]北京工业大学信息学部,北京朝阳100124
出 处:《计算机测量与控制》2018年第5期14-16,20,共4页Computer Measurement &Control
基 金:国家自然科学基金项目(61573029)
摘 要:针对准确与实时检测晶圆表面缺陷的需求,提出了一种基于主成分分析(Principal Component Analysis,PCA)和贝叶斯概率模型(Bayesian Probability Model,BPM)的在线检测算法;首先,改进双边滤波方法以消除晶圆表面图像中的噪声和突出晶圆缺陷的模式特征;然后,提取晶圆表面缺陷的Hu不变矩、方向梯度直方图(Histogram of Oriented Gradients,HOG)和尺度不变特征变换特征(Scale Invariant Feature Transform,SIFT);接着,采用PCA方法对特征进行降维;最后,在离线建模阶段构建正常晶圆表面模式和各种缺陷模式的BPMs;在在线检测阶段采用胜者全取(Winner-take-all,WTA)法判断缺陷的模式和构建新缺陷模式的BPMs;提出算法在WM-811K晶圆数据库中得到了87.2%的检测准确率;单副图像的平均检测时间为40.5ms;实验结果表明,提出算法具有较高的检测准确性与实时性,可以实际应用到集成电路制造产线的晶圆表面缺陷在线检测中。For accurate and real-time detection of wafer surface defects,an online detection algorithm based on principal component analysis(PCA)and Bayesian probability model(BPM)is proposed.Firstly,the bilateral filtering method is improved to filter the noise in the wafer surface image and to highlight the pattern characteristics of the wafer defects.Next,the Hu invariant moments,histogram of oriented gradients(HOG)and scale invariant feature transform(SIFT)features of wafer surface defects are extracted.Then,the PCA method is adopted to reduce the feature dimension.Finally,the BPMs of the normal wafer surface pattern and various defect patterns are constructed in the off-line modeling phase.In the on-line detection phase,the defect patterns are judged by using the Winner-take-all(WTA)method,and the BPM of the new defect patterns are constructed.The detection accuracy of the proposed algorithm is 80.6%in the WM-811 K wafer database.The average detection time of single image is 40.5 ms.The experimental results show that the proposed algorithm has high detection accuracy and is provided with real-time performance.It can be really applied to the on-line detection of wafer surface defects in the manufacturing line of integrated circuits.
关 键 词:集成电路制造 晶圆表面缺陷检测 表面特征 主成分分析 贝叶斯概率模型
分 类 号:TP391.41[自动化与计算机技术—计算机应用技术]
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