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REINFORCEMENT LEARNING BASED LOCALLY INTERPRETABLE MODELS

机译:基于局部解释模型的加固学习

摘要

A method for training a locally interpretable model includes obtaining a set of training samples and training a black-box model using the set of training samples. The method also includes generating, using the trained black-box model and the set of training samples, a set of auxiliary training samples and training a baseline interpretable model using the set of auxiliary training samples. The method also includes training, using the set of auxiliary training samples and baseline interpretable model, an instance-wise weight estimator model. For each auxiliary training sample in the set of auxiliary training samples, the method also includes determining, using the trained instance-wise weight estimator model, a selection probability for the auxiliary training sample. The method also includes selecting, based on the selection probabilities, a subset of auxiliary training samples and training the locally interpretable model using the subset of auxiliary training samples.
机译:用于训练局部解释模型的方法包括使用该组训练样本获得一组训练样本并训练黑盒模型。该方法还包括使用培训的黑盒式模型和训练样本集,一组辅助训练样本和培训基线可解释模型的一组辅助训练样本。该方法还包括使用该组辅助训练样本和基线可解释模型的培训,这是一个实例 - 方向估计模型。对于该组辅助训练样本中的每个辅助训练样本,该方法还包括使用训练的实例重量估计器模型来确定辅助训练样本的选择概率。该方法还包括基于选择概率选择辅助训练样本的子集,并使用辅助训练样本的子集训练局部解释模型。

著录项

  • 公开/公告号US2021089828A1

    专利类型

  • 公开/公告日2021-03-25

    原文格式PDF

  • 申请/专利权人 GOOGLE LLC;

    申请/专利号US202017030316

  • 申请日2020-09-23

  • 分类号G06K9/62;G06N3/02;

  • 国家 US

  • 入库时间 2022-08-24 17:54:19

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