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Code-Switching ASR and TTS Using Semisupervised Learning with Machine Speech Chain

机译:代码切换ASR和使用Machine语音链使用半培训学习的TTS

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摘要

The phenomenon where a speaker mixes two or more languages within the same conversation is called code-switching (CS). Handling CS is challenging for automatic speech recognition (ASR) and text-to-speech (TTS) because it requires coping with multilingual input. Although CS text or speech may be found in social media, the datasets of CS speech and corresponding CS transcriptions are hard to obtain even though they are required for supervised training. This work adopts a deep learning-based machine speech chain to train CS ASR and CS TTS with each other with semisupervised learning. After supervised learning with monolingual data, the machine speech chain is then carried out with unsupervised learning of either the CS text or speech. The results show that the machine speech chain trains ASR and TTS together and improves performance without requiring the pair of CS speech and corresponding CS text. We also integrate language embedding and language identification into the CS machine speech chain in order to handle CS better by giving language information. We demonstrate that our proposed approach can improve the performance on both a single CS language pair and multiple CS language pairs, including the unknown CS excluded from training data.
机译:扬声器在同一对话中混合两种或多种语言的现象称为代码切换(CS)。处理CS对自动语音识别(ASR)和文本到语音(TTS)有挑战性,因为它需要应对多语言输入。虽然可以在社交媒体中找到CS文本或演讲,但即使监督培训需要,难以获得CS语音和相应的CS转录的数据集。这项工作采用基于深度学习的机器语音链,通过半体验学习培训CS ASR和CS TTS。在通过单晶体数据监督学习后,随后对CS文本或语音的无监督学习进行机器语音链。结果表明,机器语音链将ASR和TTS一起列出并提高性能而不需要对CS语音和相应的CS文本。我们还将语言嵌入和语言识别集成到CS机语音链中,以便通过提供语言信息来更好地处理CS。我们展示我们所提出的方法可以提高单个CS语言对和多个CS语言对的性能,包括从训练数据中排除的未知CS。

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