DiaPer:利用基于感知器的吸引器进行端到端神经萃取

IF 4.1 2区 计算机科学 Q1 ACOUSTICS IEEE/ACM Transactions on Audio, Speech, and Language Processing Pub Date : 2024-07-03 DOI:10.1109/TASLP.2024.3422818
Federico Landini;Mireia Diez;Themos Stafylakis;Lukáš Burget
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引用次数: 0

摘要

直到最近,层叠系统仍在说话人日记领域占据主导地位。由于其局限性(主要是语音重叠和管道繁琐),端到端模型近来大受欢迎。其中最成功的模型之一是基于吸引子的端到端神经日记(EEND-EDA)。在这项工作中,我们用基于感知器的 EDA 模块取代了 EEND-EDA,并展示了它与 EEND-EDA 相比的优势,即在研究较多的 Callhome 数据集上获得更好的性能,更准确地找到对话中说话者的数量,以及更快的推理时间。此外,在与其他方法进行详尽比较时,我们的模型 DiaPer 以其非常轻巧的设计获得了显著的性能。此外,我们还在十多个公共宽频数据集上与其他作品和级联基线进行了比较。与本出版物一起发布的还有 DiaPer 的代码以及在公共和免费数据上训练的模型。
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DiaPer: End-to-End Neural Diarization With Perceiver-Based Attractors
Until recently, the field of speaker diarization was dominated by cascaded systems. Due to their limitations, mainly regarding overlapped speech and cumbersome pipelines, end-to-end models have gained great popularity lately. One of the most successful models is end-to-end neural diarization with encoder-decoder based attractors (EEND-EDA). In this work, we replace the EDA module with a Perceiver-based one and show its advantages over EEND-EDA; namely obtaining better performance on the largely studied Callhome dataset, finding the quantity of speakers in a conversation more accurately, and faster inference time. Furthermore, when exhaustively compared with other methods, our model, DiaPer, reaches remarkable performance with a very lightweight design. Besides, we perform comparisons with other works and a cascaded baseline across more than ten public wide-band datasets. Together with this publication, we release the code of DiaPer as well as models trained on public and free data.
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来源期刊
IEEE/ACM Transactions on Audio, Speech, and Language Processing
IEEE/ACM Transactions on Audio, Speech, and Language Processing ACOUSTICS-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
11.30
自引率
11.10%
发文量
217
期刊介绍: The IEEE/ACM Transactions on Audio, Speech, and Language Processing covers audio, speech and language processing and the sciences that support them. In audio processing: transducers, room acoustics, active sound control, human audition, analysis/synthesis/coding of music, and consumer audio. In speech processing: areas such as speech analysis, synthesis, coding, speech and speaker recognition, speech production and perception, and speech enhancement. In language processing: speech and text analysis, understanding, generation, dialog management, translation, summarization, question answering and document indexing and retrieval, as well as general language modeling.
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