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Multilingual Speech Evaluation: Case Studies on English, Malay and Tamil

Domain:

natural language processing

Record type:

paper
Creator:
ZhaShiChe
Host:avatar
Speech evaluation is an essential component in computer-assisted language learning (CALL). While speech evaluation on English has been popular, automatic speech scoring on low resource languages remains challenging. Work in this area has focused on monolingual specific designs and handcrafted features stemming from resource-rich languages like English. Such approaches are often difficult to generalize to other languages, especially if we also want to consider suprasegmental qualities such as rhythm. In this work, we examine three different languages that possess distinct rhythm patterns: English (stress-timed), Malay (syllable-timed), and Tamil (mora-timed). We exploit robust feature representations inspired by music processing and vector representation learning. Empirical validations show consistent gains for all three languages when predicting pronunciation, rhythm and intonation performance. Accepted at INTERSPEECH 2021

Visit

arxiv.org

Tasks

speech processing

Tags

Computation and LanguageSoundAudio and Speech Processing