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Training Method for Pattern Classifier Based on the Performance after Adaptation

机译:基于适应后性能的模式分类器训练方法

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摘要

This paper describes a method for training a pattern classifier that will perform well after it has been adapted to changes in input conditions. Considering the adaptation meth- ods which are based on the transformation of classifier parameters, we formulate the problem of optimizing classifiers, and propose a method for training them. In the proposed training method, the classifier is trained while the adaptation is being carried out. The objective function for the training is given based on the recognition performance obtained by the adapted classifier. The utility of the proposed training method is demonstrated by experiments in a five-class Japanese vowel pattern recognition task with speaker adaptation.
机译:本文介绍了一种训练模式分类器的方法,该方法在适应输入条件的变化后将表现良好。考虑到基于分类器参数转换的自适应方法,我们提出了优化分类器的问题,并提出了一种训练它们的方法。在提出的训练方法中,在进行自适应的同时训练分类器。基于自适应分类器获得的识别性能,给出训练的目标函数。通过在具有说话人适应性的五级日本元音模式识别任务中的实验,证明了所提出的训练方法的实用性。

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