作者
Akshay Kumar, Seedahmed S Mahmoud, Yin Wang, Serri Faisal, Qiang Fang
发表日期
2022/7/28
研讨会论文
2022 15th International Conference on Human System Interaction (HSI)
页码范围
1-5
出版商
IEEE
简介
Speech impairment assessment is an essential part of the rehabilitation of aphasic patients. As the number of stroke incidents is increasing year after year, it is essential to develop automatic speech impairment assessment (ASIA) methods. Deep learning, together with time-frequency distribution (TFD) representation of speech data, can be a promising solution for developing ASIA methods. However, before making further progress, it is essential to assess various TFDs in terms of their effectiveness for ASIA. Therefore, this paper assessed and compared various TFD methods for ASIA of Mandarin speech. Various state-of-the-art computer vision convolutional neural network models were trained, using TFDs of speech data of thirty-four healthy participants and twelve aphasic patients, to assess the effectiveness of TFDs. The automatic speech recognition rate was used as a measure for evaluating the performance of …
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