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Forensic Identification Reporting Using A GMM Based Speaker Recognition System Dedicated to Algerian Arabic Dialect Speakers

机译:使用专用于阿尔及利亚阿拉伯语方言扬声器的GMM基于GMM的扬声器识别系统的法医识别报告

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starting from the fact of the lack of Arabic databases dedicated to performance evaluation of speaker recognition and forensic reporting systems. We present in this paper our experience in constructing an Algerian dialect database and the motivation beyond this work. After that, the corpus based Bayesian framework for interpretation of evidence in forensic systems in terms of likelihood ratio (LR) is applied on this database under different recording conditions: microphone, fixed and cellular. Preliminary results in terms of Receiver Operating Characteristics (ROC) and TIPPET plots show higher accuracy in matched conditions of training and testing. However, the performance degrades significantly in mismatched conditions.
机译:从缺乏致力于扬声器识别和法医报告系统的性能评估的阿拉伯语数据库的事实开始。我们在本文中展示了我们构建阿尔及利亚方言数据库的经验和超出这项工作的动机。此后,在不同的记录条件下应用于似然比(LR)在此数据库上应用了基于概念系统中的证据的贝叶斯框架:麦克风,固定和蜂窝。在接收器操作特性(ROC)和Tippet Plot方面的初步结果表明了竞争条件的更高的准确性。然而,性能显着降低了不匹配的条件。

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