The Intelligent Voice System for the IberSPEECH-RTVE 2018 Speaker Diarization Challenge

Abbas Khosravani, C. Glackin, Nazim Dugan, G. Chollet, Nigel Cannings
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引用次数: 4

Abstract

This paper describes the Intelligent Voice (IV) speaker diarization system for IberSPEECH-RTVE 2018 speaker diarization challenge. We developed a new speaker diarization built on the success of deep neural network based speaker embeddings in speaker verification systems. In contrary to acoustic features such as MFCCs, deep neural network embeddings are much better at discerning speaker identities especially for speech acquired without constraint on recording equipment and environment. We perform spectral clustering on our proposed CNNLSTM-based speaker embeddings to find homogeneous segments and generate speaker log likelihood for each frame. A HMM is then used to refine the speaker posterior probabilities through limiting the probability of switching between speakers when changing frames. We present results obtained on the development set (dev2) as well as the evaluation set …
智能语音系统为IberSPEECH-RTVE 2018扬声器拨号挑战赛
本文介绍了智能语音(IV)扬声器拨号系统,用于IberSPEECH-RTVE 2018扬声器拨号挑战赛。基于基于深度神经网络的说话人嵌入在说话人验证系统中的成功,我们开发了一种新的说话人化方法。与mfccc等声学特征相反,深度神经网络嵌入在识别说话者身份方面要好得多,特别是对于不受录音设备和环境限制的语音。我们对我们提出的基于cnnlstm的说话人嵌入进行频谱聚类,以找到均匀的片段,并为每帧生成说话人的日志似然。然后使用HMM通过限制切换帧时说话人之间切换的概率来细化说话人后验概率。我们给出了在开发集(dev2)和评估集上得到的结果。
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