chang19@interspeech_2019@ISCA

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#1 Code-Switching Sentence Generation by Generative Adversarial Networks and its Application to Data Augmentation [PDF] [Copy] [Kimi1]

Authors: Ching-Ting Chang ; Shun-Po Chuang ; Hung-Yi Lee

Code-switching is about dealing with alternative languages in speech or text. It is partially speaker-dependent and domain-related, so completely explaining the phenomenon by linguistic rules is challenging. Compared to most monolingual tasks, insufficient data is an issue for code-switching. To mitigate the issue without expensive human annotation, we proposed an unsupervised method for code-switching data augmentation. By utilizing a generative adversarial network, we can generate intra-sentential code-switching sentences from monolingual sentences. We applied the proposed method on two corpora, and the result shows that the generated code-switching sentences improve the performance of code-switching language models.