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LITHOGRAPHIC HOTSPOT DETECTION USING MULTIPLE MACHINE LEARNING KERNELS

机译:使用多机器学习核的光刻热点检测

摘要

A hotspot detection system that classifies a set of hotspot training data into a plurality of hotspot clusters according to their topologies, where the hotspot clusters are associated with different hotspot topologies, and classifies a set of non-hotspot training data into a plurality of non-hotspot clusters according to their topologies, where the non-hotspot clusters are associated with different topologies. The system extracts topological and non-topological critical features from the hotspot clusters and centroids of the non-hotspot clusters. The system also creates a plurality of kernels configured to identify hotspots, where each kernel is constructed using the extracted critical features of the non-hotspot clusters and the extracted critical features from one of the hotspot clusters, and each kernel is configured to identify hotspot topologies different from hotspot topologies that the other kernels are configured to identify.
机译:一种热点检测系统,其根据一组热点训练数据的拓扑将其分类为多个热点集群,其中,热点集群与不同的热点拓扑相关联,并将一组非热点训练数据分类为多个非热点训练数据。热点群集根据其拓扑结构,其中非热点群集与不同的拓扑相关联。该系统从热点群集和非热点群集的质心中提取拓扑和非拓扑关键特征。该系统还创建多个配置为标识热点的内核,其中每个内核都是使用提取的非热点群集的关键特征和从某个热点群集中提取的关键特征构造的,并且每个内核都配置为标识热点拓扑与其他内核配置为识别的热点拓扑不同。

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