CIF: Continuous Integrate-and-Fire for End-to-End Speech Recognition
Dong, Linhao1,2; Xu, Bo1
2020-05
会议名称International Conference on Acoustics, Speech and Signal Processing (ICASSP)
会议日期2020-05
会议地点在线会议
出版者IEEE Xplore
摘要

In this paper, we propose a novel soft and monotonic alignment mechanism used for sequence transduction. It is inspired by the integrate-and-fire model in spiking neural networks and employed in the encoder-decoder framework consists of continuous functions, thus being named as: Continuous Integrate-and-Fire (CIF). Applied to the ASR task, CIF not only shows a concise calculation, but also supports online recognition and acoustic boundary positioning, thus suitable for various ASR scenarios. Several support strategies are also proposed to alleviate the unique problems of CIF-based model. With the joint action of these methods, the CIF-based model shows competitive performance. Notably, it achieves a word error rate (WER) of 2.86% on the test-clean of Librispeech and creates new state-of-the-art result on Mandarin telephone ASR benchmark.

关键词continuous integrate-and-fire end-to-end model soft and monotonic alignment online speech recognition acoustic boundary positioning
学科门类工学
收录类别EI
资助项目Beijing Municipal Science and Technology Project[Z181100008918017] ; Beijing Municipal Science and Technology Project[Z181100008918017]
七大方向——子方向分类语音识别与合成
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/39277
专题复杂系统认知与决策实验室_听觉模型与认知计算
作者单位1.Institute of Automation, Chinese Academy of Sciences, China
2.University of Chinese Academy of Sciences, China
第一作者单位中国科学院自动化研究所
推荐引用方式
GB/T 7714
Dong, Linhao,Xu, Bo. CIF: Continuous Integrate-and-Fire for End-to-End Speech Recognition[C]:IEEE Xplore,2020.
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