首页> 外国专利> DYNAMIC CONTROL OF MACHINE LEARNING BASED MEASUREMENT RECIPE OPTIMIZATION

DYNAMIC CONTROL OF MACHINE LEARNING BASED MEASUREMENT RECIPE OPTIMIZATION

机译:基于机器学习的测量配方优化动态控制

摘要

Methods and systems for training and implementing metrology recipes while dynamically controlling the convergence trajectories of multiple performance objectives are described herein. Performance metrics are employed to regularize the optimization process employed during measurement model training, model-based regression, or both. Weighting values associated with each of the performance objectives in the loss function of the model optimization are dynamically controlled during model training. In this manner, convergence of each performance objective and the tradeoff between multiple performance objectives of the loss function is controlled to arrive at a trained measurement model in a stable, balanced manner. A trained measurement model is employed to estimate values of parameters of interest based on measurements of structures having unknown values of one or more parameters of interest. In another aspect, weighting values associated with each of the performance objectives in a model-based regression on a measurement model are dynamically controlled.
机译:本文描述了在动态控制多个性能目标的收敛轨迹的同时培训和实施计量方法的方法和系统。性能指标用于规范在度量模型训练、基于模型的回归或两者中使用的优化过程。在模型训练期间,与模型优化的损失函数中的每个性能目标相关联的权重值将被动态控制。通过这种方式,控制每个性能目标的收敛性以及损失函数的多个性能目标之间的权衡,从而以稳定、平衡的方式获得经过训练的测量模型。一个经过训练的测量模型用于基于具有一个或多个感兴趣参数的未知值的结构的测量来估计感兴趣参数的值。在另一方面,在基于测量模型的模型回归中,与每个性能目标相关联的权重值是动态控制的。

著录项

  • 公开/公告号WO2022076173A1

    专利类型

  • 公开/公告日2022-04-14

    原文格式PDF

  • 申请/专利权人 KLA CORPORATION;

    申请/专利号USUS2021/051623

  • 发明设计人 PANDEV STILIAN IVANOV;JAYARAMAN ARVIND;

    申请日2021-09-23

  • 分类号G01N21/95;G01N21/956;G01N21/88;G06T7;G06N20;H01L21/66;

  • 国家 US

  • 入库时间 2022-08-25 00:32:36

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