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A Nonlinearized Discriminant Analysis and Its Application to Speech Impediment Therapy

机译:非线性判别分析及其在语音障碍治疗中的应用

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This paper studies the application of automatic phoneme classification to the computer-aided training of the speech and hearing handicapped. In particular, we focus on how efficiently discriminant analysis can reduce the number of features and increase classification performance. A nonlinear counterpart of Linear Discriminant Analysis, which is a general purpose class specific feature extractor, is presented where the nonlinearization is carried out by employing the so-called 'kernel-idea'. Then, we examine how this nonlinear extraction technique affects the efficiency of learning algorithms such as Artificial Neural Network and Support Vector Machines.
机译:本文研究了自动音素分类对言论和听力培训的应用。特别是,我们专注于有效的判别分析可以减少功能的数量并提高分类性能。作为通用类特定特征提取器的线性判别分析的非线性对应物,其通过采用所谓的“内核”来执行非线性化。然后,我们研究这种非线性提取技术如何影响人工神经网络等学习算法的效率和支持向量机。

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