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A study of phonetic feature representations for SVM-based speaker verification

机译:基于SVM的扬声器验证的语音特征表示研究

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We investigate an alternative formulation of phonetic feature representations for SVM-based speaker verification. The new features are based on conditional likelihood representations rather than the joint-likelihood or bag-of-ngram calculations traditionally used. Conditional likelihoods are shown to be a more natural method of modelling phonetic information, and improve upon conventional joint likelihoods in a number of cases. The problem of feature normalisation is also examined, with a previously proposed non-parametric method based on rank shown to be particularly useful. Combinations of feature representations are examined and the potential for complementary information between joint and conditional likelihoods considered. Additionally, feature compensation is applied to conditional likelihoods with considerable improvement in performance.
机译:我们调查基于SVM的扬声器验证的语音特征表示的替代制定。新功能基于条件似然表示,而不是传统上使用的关节似然或袋式计算。条件可能性被证明是一种更自然的建模语音信息方法,并在许多情况下改善传统的关节似然。还检查了特征归一化的问题,具有先前提出的基于等级的非参数方法,显示为特别有用。检查特征表示的组合,并考虑了联合和条件似然之间的互补信息的潜力。此外,特征补偿适用于具有相当大的性能的条件可能性。

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