Spike-Triggered Non-Autoregressive Transformer for End-to-End Speech Recognition
Zhengkun Tian1,2; Jiangyan Yi1,2; Jianhua Tao1,2,3; Ye Bai1,2; Shuai Zhang1,2; Zhengqi Wen1,2
2020-10
会议名称INTERSPEECH
会议日期October 25–29, 2020
会议地点Shanghai, China
摘要

Non-autoregressive transformer models have achieved extremely
fast inference speed and comparable performance with autoregressive sequence-to-sequence models in neural machine translation. Most of the non-autoregressive transformers decode the target sequence from a predefined-length mask sequence. If the predefined length is too long, it will cause a lot of redundant calculations. If the predefined length is shorter than the length of the target sequence, it will hurt the performance of the model. To address this problem and improve the inference speed, we propose a spike-triggered non-autoregressive transformer model for end-to-end speech recognition, which introduces a CTC module to predict the length of the target sequence and accelerate the convergence. All the experiments are conducted on a public Chinese mandarin dataset AISHELL-1. The results show that the proposed model can accurately predict the length of the target sequence and achieve a competitive performance with the advanced transformers. What’s more, the model even achieves a real-time factor of 0.0056, which exceeds all
mainstream speech recognition models.

收录类别EI
语种英语
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/48607
专题多模态人工智能系统全国重点实验室_智能交互
通讯作者Jianhua Tao
作者单位1.NLPR, Institute of Automation, Chinese Academy of Sciences
2.School of Artificial Intelligence, University of Chinese Academy of Sciences
3.CAS Center for Excellence in Brain Science and Intelligence Technology
第一作者单位模式识别国家重点实验室
通讯作者单位模式识别国家重点实验室
推荐引用方式
GB/T 7714
Zhengkun Tian,Jiangyan Yi,Jianhua Tao,et al. Spike-Triggered Non-Autoregressive Transformer for End-to-End Speech Recognition[C],2020.
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