Analysing Word Stress and its effects on Assamese and Mizo using Machine Learning

Jubilee Gogoi, Sanghamitra Nath
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Abstract

Stress identification is an important problem in speech processing, which aims to convey special attention to the listeners. Stressed words or syllables result in changing the meaning of a sentence. In the case of tonal languages, stress identification is essential to understand how stress over words may affect the tone. This work is an attempt to identify the effects of stress on tones in Mizo and intonation in Assamese. It also aims to analyze the co-articulatory effects of stress and tones in Mizo and stress and intonation in Assamese with the help of an audio dataset. Although a few works are available to identify the effects of tones and stress, for Indian languages especially, in North East Indian languages which are extremely low in resources, to the best of our knowledge, no such work is available. For our work, we have considered one tonal language, i.e., Mizo or Lushai, spoken in and around the state of Mizoram, and one non-tonal language, i.e., Assamese, spoken in and around the state of Assam in India.
使用机器学习分析单词重音及其对阿萨姆语和米佐语的影响
重音识别是语音处理中的一个重要问题,其目的是向听者传达特殊的注意。重读的单词或音节会改变句子的意思。在声调语言的情况下,重音识别对于理解单词上的重音如何影响音调是至关重要的。这项工作是试图确定重音对米佐语声调和阿萨姆语语调的影响。它还旨在借助音频数据集分析米佐语的重音和音调以及阿萨姆语的重音和语调的共同发音效果。虽然有一些作品可以确定音调和重音的影响,但就我们所知,对于印度语言,特别是资源极其匮乏的东北印度语言,没有这样的作品可用。在我们的工作中,我们考虑了一种声调语言,即米佐拉姆邦及其周边地区使用的米佐拉语或鲁塞语,以及一种非声调语言,即印度阿萨姆邦及其周边地区使用的阿萨姆语。
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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