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Automatic Assessment of Speech Impairment in Cantonese-Speaking People with Aphasia

机译:在粤语讲话中自动评估讲话者的失语症

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Aphasia is a common type of acquired language impairment resulting from dysfunction in specific brain regions. Analysis of narrative spontaneous speech, e.g., story-telling, is an essential component of standardized clinical assessment on people with aphasia (PWA). Subjective assessment by trained speech-language pathologists (SLP) have many limitations in efficiency, effectiveness and practicality. This article describes a fully automated system for speech assessment of Cantonese-speaking PWA. A deep neural network (DNN) based automatic speech recognition (ASR) system is developed for aphasic speech by multi-task training with both in-domain and out-of-domain speech data. Story-level embedding and siamese network are applied to derive robust text features, which can be used to quantify the difference between aphasic speech and unimpaired one. The proposed text features are combined with conventional acoustic features to cover different aspects of speech and language impairment in PWA. Experimental results show a high correlation between predicted scores and subject assessment scores. The best correlation value achieved with ASR-generated transcription is .827, as compared with .844 achieved with manual transcription. The siamese network significantly outperforms story-level embedding in generating text features for automatic assessment.
机译:失语症是特定脑区功能障碍引起的常见类型的语言障碍。分析叙事自发性言论,例如讲故事,是具有失语症(PWA)的标准化临床评估的重要组成部分。训练有素的语言病理学家(SLP)的主观评估具有许多效率,有效性和实用性的局限性。本文介绍了粤语PWA的语音评估的全自动系统。基于深度神经网络(DNN)的自动语音识别(ASR)由多任务培训与域中的多任务培训开发出开发用于失位语音。故事级别嵌入和暹罗网络应用于推出强大的文本特征,可用于量化失端语音与未受害的差异。所提出的文本功能与传统的声学功能相结合,以涵盖PWA中的语音和语言损伤的不同方面。实验结果表明,预测得分和主题评估分数之间的高相关性。与ASR生成的转录实现的最佳相关值是.827,与手动转录实现的.844相比。暹罗网络在生成文本特征时显着优于自动评估的文本特征。

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