Non-Autoregressive Predictive Coding for Learning Speech Representations from Local Dependencies
November 01, 2020 ยท Declared Dead ยท ๐ Interspeech
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Authors
Alexander H. Liu, Yu-An Chung, James Glass
arXiv ID
2011.00406
Category
cs.CL: Computation & Language
Citations
93
Venue
Interspeech
Last Checked
3 months ago
Abstract
Self-supervised speech representations have been shown to be effective in a variety of speech applications. However, existing representation learning methods generally rely on the autoregressive model and/or observed global dependencies while generating the representation. In this work, we propose Non-Autoregressive Predictive Coding (NPC), a self-supervised method, to learn a speech representation in a non-autoregressive manner by relying only on local dependencies of speech. NPC has a conceptually simple objective and can be implemented easily with the introduced Masked Convolution Blocks. NPC offers a significant speedup for inference since it is parallelizable in time and has a fixed inference time for each time step regardless of the input sequence length. We discuss and verify the effectiveness of NPC by theoretically and empirically comparing it with other methods. We show that the NPC representation is comparable to other methods in speech experiments on phonetic and speaker classification while being more efficient.
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