A Cascade Sequence-to-Sequence Model for Chinese Mandarin Lip Reading

Ya Zhao, Rui Xu, Mingli Song
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引用次数: 33

Abstract

Lip reading aims at decoding texts from the movement of a speaker's mouth. In recent years, lip reading methods have made great progress for English, at both word-level and sentence-level. Unlike English, however, Chinese Mandarin is a tone-based language and relies on pitches to distinguish lexical or grammatical meaning, which significantly increases the ambiguity for the lip reading task. In this paper, we propose a Cascade Sequence-to-Sequence Model for Chinese Mandarin (CSSMCM) lip reading, which explicitly models tones when predicting sentence. Tones are modeled based on visual information and syntactic structure, and are used to predict sentence along with visual information and syntactic structure. In order to evaluate CSSMCM, a dataset called CMLR (Chinese Mandarin Lip Reading) is collected and released, consisting of over 100,000 natural sentences from China Network Television website. When trained on CMLR dataset, the proposed CSSMCM surpasses the performance of state-of-the-art lip reading frameworks, which confirms the effectiveness of explicit modeling of tones for Chinese Mandarin lip reading.
汉语普通话唇读的级联序列-序列模型
唇读的目的是通过说话人的嘴的运动来解读文本。近年来,唇读方法在英语词汇水平和句子水平上都取得了很大的进步。然而,与英语不同的是,汉语普通话是一种以声调为基础的语言,依靠音高来区分词汇或语法意义,这大大增加了唇读任务的模糊性。在本文中,我们提出了一个串级序列到序列的汉语普通话唇读模型(CSSMCM),该模型在预测句子时明确地建模声调。声调是基于视觉信息和句法结构建模的,用于预测句子的视觉信息和句法结构。为了评估CSSMCM,我们收集并发布了一个名为CMLR (Chinese Mandarin Lip Reading)的数据集,该数据集由来自中国网络电视台网站的10万多条自然句子组成。当在CMLR数据集上训练时,所提出的CSSMCM超过了最先进的唇读框架的性能,这证实了显式语调建模对汉语普通话唇读的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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