DOI: 10.58837/chula.the.2021.95
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Incorporating context into non-autoregressive model using contextualized CTC for sequence labelling

Burin Naowarat

Abstract: Connectionist Temporal Classification (CTC) loss has become widely used in sequence modeling tasks such as Automatic Speech Recognition (ASR) and Handwritten Text Recognition (HTR) due to its ease of use. CTC itself has no architecture constraints, but it is commonly used with recurrent models that predict letters based on histories in order to relax the conditional independent assumption. However, recent sequence models that incorporate CTC loss have been focusing on speed by removing recurrent structures, he… Show more

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