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Diacritic-Level Pronunciation Analysis Using Phonological Features

机译:音韵特征的变音符号发音分析

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Speech sound disorders affect 10% of preschool and school-age children, adversely affecting their communication, academic performance, and interaction level. Effective pronunciation training requires prolonged supervised practice and interaction. Unfortunately, many children have limited or no access to a speech-language pathologist. Computer-assisted pronunciation training has the potential for being a highly effective teaching aid; however, to-date such systems remain incapable of identifying pronunciation errors with sufficient accuracy. We propose a system that combines a multi-target architecture with weighted finite-state transducers to first segment and then analyze an utterance in terms of its phonological features. We analyze a corpus of 90 children aged 4–7 and find differences between the typically developing and the speech disordered groups.
机译:语音障碍影响了10%的学龄前和学龄儿童,对他们的沟通,学习成绩和互动水平产生了不利影响。有效的发音训练需要长时间的有监督的练习和互动。不幸的是,许多孩子很少或根本没有机会接触言语病理学家。计算机辅助的语音训练具有成为高效教具的潜力。然而,迄今为止,这样的系统仍然不能以足够的精度来识别发音错误。我们提出了一种将多目标体系结构与加权有限状态换能器相结合的系统,首先进行细分,然后根据语音特征分析话语。我们分析了一个由90名4-7岁儿童组成的语料库,并发现了典型的发育障碍和言语障碍人群之间的差异。

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