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A Speaker Verification System Using SVM over a Spanish Corpus

机译:在西班牙语料库上使用SVM的演讲者验证系统

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This paper presents a description of the principal aspects employed in the development of a speaker verification system based on a Spanish corpus. The main goal is to obtain classification results and behavior using Support Vector Machines (SVM) as the classifier technique. The most relevant aspects involved in developing a Spanish corpus are given. For the front end processing a novel method to suppress silences between words is proposed and successfully applied. The validation to the complete system is made using randomly selected feature vectors and vectors from continuous sequences of the voice signal. Additionally, Gaussian Mixtures Models (GMM) and Artificial Neural Networks (ANN) are also used as classifiers to compare and validate the results.
机译:本文介绍了基于西班牙语料库的说话者验证系统开发中使用的主要方面。主要目标是使用支持向量机(SVM)作为分类器技术来获得分类结果和行为。给出了发展西班牙语料库的最相关方面。对于前端处理,提出并成功地应用了一种抑制单词之间的静音的新方法。使用随机选择的特征向量和来自语音信号连续序列的向量对整个系统进行验证。此外,高斯混合模型(GMM)和人工神经网络(ANN)也用作分类器,以比较和验证结果。

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