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Applying Prediction Techniques to Phoneme-based AAC Systems

机译:将预测技术应用于基于音素的AAC系统

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It is well documented that people with severe speech and physical impairments (SSPI) often experience literacy difficulties, which hinder them from effectively using orthographic-based AAC systems for communication. To address this problem, phoneme-based AAC systems have been proposed, which enable users to access a set of spoken phonemes and combine phonemes into speech output. In this paper we investigate how prediction techniques can be applied to improve user performance of such systems. We have developed a phoneme-based prediction system, which supports single phoneme prediction and phoneme-based word prediction using statistical language models generated using a crowdsourced AAC-like corpus. We incorporated our prediction system into a hypothetical 12-key reduced phoneme keyboard. A computational experiment showed that our prediction system led to 56.3% average keystroke savings.
机译:有很好的记录,致辞和物理障碍(SSPI)的人经常遇到识字困难,这阻碍了他们有效地使用基于陈列科的AAC系统进行沟通。为了解决这个问题,已经提出了基于音素的AAC系统,使用户能够访问一组口语音素并将音素组合成语音输出。在本文中,我们研究了如何应用预测技术以改善这些系统的用户性能。我们开发了一种基于音素的预测系统,其使用使用众包类似AAC类语料库产生的统计语言模型支持单个音素预测和基于音素的字预测。我们将我们的预测系统纳入一个假设的12关键还原音素键盘。计算实验表明,我们的预测系统率为56.3%的平均击键节省。

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