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Target word prediction and paraphasia classification in spoken discourse

机译:话语中目标词的预测和语意偏向分类

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摘要

We present a system for automatically detecting and classifying phonologically anomalous productions in the speech of individuals with aphasia. Working from transcribed discourse samples, our system identifies neologisms, and uses a combination of string alignment and language models to produce a lattice of plausible words that the speaker may have intended to produce. We then score this lattice according to various features, and attempt to determine whether the anomalous production represented a phonemic error or a genuine neologism. This approach has the potential to be expanded to consider other types of paraphasic errors, and could be applied to a wide variety of screening and therapeutic applications.
机译:我们提出了一种系统,用于自动检测和分类失语症患者语音中的语音异常产生。我们的系统从转录的话语样本中进行工作,以识别新词,并使用字符串对齐和语言模型的组合来生成说话者可能想要产生的似是而非的词组。然后,我们根据各种功能对该格进行评分,并尝试确定异常产生是音素错误还是真正的新词。这种方法有可能被扩展以考虑其他类型的相位误差,并且可以应用于多种筛查和治疗应用。

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