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Discriminative Phonotactics for Dialect Recognition Using Context-Dependent Phone Classifiers

机译:使用上下文相关的电话分类器进行方言识别的判别语音策略

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In this paper, we introduce a new approach to dialect recognition that relies on context-dependent (CD) phonetic differences between dialects as well as phonotactics. Given a speech utterance, we obtain the phone sequence using a CD-phone recognizer. We then identify the most likely dialect of these CD-phones using SVM classifiers. Augmenting these phones with the output of these classifiers, we extract augmented phono-tactic features which are subsequently given to a logistic regression classifier to obtain a dialect detection score. We test our approach on the task of detecting four Arabic dialects from 30s utterances. We compare our performance to two baselines, PRLM and GMM-UBM, as well as to our own improved version of GMM-UBM which employs fMLLR adaptation. Our approach performs significantly better than all three baselines at 5% absolute Equal Error Rate (EER). The overall EER of our system is 6%.
机译:在本文中,我们介绍了一种新的方言识别方法,该方法依赖于方言之间的上下文相关(CD)语音差异以及音韵学。给定语音话语,我们使用CD电话识别器获得电话序列。然后,我们使用SVM分类器确定这些CD电话中最有可能的方言。使用这些分类器的输出来增强这些电话,我们提取了增强的语音策略特征,随后将其提供给逻辑回归分类器以获得方言检测分数。我们测试了从30年代语音中检测四种阿拉伯方言的方法。我们将性能与PRLM和GMM-UBM两个基准进行比较,并与采用fMLLR自适应技术的GMM-UBM改进版进行比较。我们的方法在5%的绝对均等错误率(EER)下的性能明显优于所有三个基线。我们系统的整体EER为6%。

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