将ASR输出集成到广播流的说话人分割和聚类任务中

J. Silovský, J. Zdánský, J. Nouza, P. Cerva, J. Prazak
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引用次数: 13

摘要

本文研究了自动转录在说话人化过程中的作用。我们的目标是从用户的角度来提高按标准客观度量评估的词法准确度和词法输出的质量。虽然所提出的方法依赖于自动语音识别器的输出,但它不使用词汇信息。相反,我们使用有关词边界的信息和处理流中发生的非语音事件的分类。前者信息作为说话人变换点候选者的约束条件,后者有利于忽略不携带说话人特定信息的各种声音噪声(考虑到信号的倒谱特征表示),从而损害说话人的表示。使用COST278多语言广播新闻数据库对所提出的方法进行了实验评估。我们证明了该方法在说话人分化和分割性能指标方面都有改进。此外,我们表明,在单词内(而不是在其边界)检测到的更改点数量显着减少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Incorporation of the ASR output in speaker segmentation and clustering within the task of speaker diarization of broadcast streams
In this paper we study the effect of incorporation of automatic transcriptions in the speaker diarization process. We aim to improve both the diarization accuracy as evaluated by standard objective measures and quality of the diarization output from user's perspective. Although the presented approach relies on output of an automatic speech recognizer, it makes no use of lexical information. Instead, we use information about word boundaries and classification of non-speech events occurring in the processed stream. The former information is used as constraining condition for speaker change-point candidates and the latter facilitate to neglect various vocal noise sounds that carry no speaker-specific information (considering representation of the signal by cepstral features) and thus harm the speaker's representation. The experimental evaluation of the presented approach was carried out using the COST278 multilingual broadcast news database. We demonstrate that the approach yields improvement in terms of both speaker diarization and segmentation performance measures. Furthermore, we show that the number of change-points detected within words (and not at their boundaries) is significantly reduced.
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