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PLDA using Gaussian Restricted Boltzmann Machines with application to Speaker Verification

机译:PLDA采用高斯受限的Boltzmann机器应用于扬声器验证

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A novel approach to supervised dimensionality reduction is introduced, based on Gaussian Restricted Boltzmann Machines. The proposed model should be considered as the analogue of the probabilistic LDA, using undirected graphical models. The training algorithm of the model is presented while its close relation to the cosine distance is underlined. For the problem of speaker verification, we applied it to i-vectors and attained a significant improvement compared to the Fisher's Discriminant LDA projection using less than half of the number of eigenvectors required by LDA.
机译:基于高斯受限的Boltzmann机器,引入了一种监督维度减少的新方法。所提出的模型应被视为使用无向图形模型的概率LDA的类似物。提出了模型的培训算法,而其与余弦距离的密切关系有下划线。对于扬声器验证问题,我们将其应用于i-vers,并与Fisher的判别LDA投影相比,使用LDA所需的特征向量的数量不到一半的判别LDA投影来实现了显着的改进。

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