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A comparison of syntax, semantics, and pragmatics in spoken language among residents with Alzheimer's disease in managed-care facilities

机译:管理医疗机构中患有阿尔茨海默氏病的居民口语的语法,语义和语用比较

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This research is a discriminative analysis of conversational dialogues involving individuals suffering from dementia of Alzheimer's type. Several metric analyses are applied to the transcripts of the Carolina Conversation Corpus in order to determine if there are significant statistical differences between individuals with and without Alzheimer's disease. Our prior research suggests that there exist measurable linguistic differences between managed-care residents diagnosed with Alzheimer's disease and their caregivers. This paper presents results comparing managed-care residents diagnosed with Alzheimer's disease to other managed-care residents. Results from the analysis indicate that part-of-speech and lexical richness statistics may not be good distinguishing attributes. However, go-ahead utterances and certain fluency measures provide defensible means of differentiating the linguistic characteristics of spontaneous speech between individuals that are and are not diagnosed with Alzheimer's disease. Two machine learning algorithms were able to classify the speech of individuals with and without dementia of the Alzheimer's type with accuracy up to 80%.
机译:该研究是对涉及患有阿尔茨海默氏症患者的个体的会话对话的判例性分析。若干公制分析应用于Carolina对话语料库的转录物,以确定是否存在具有和没有阿尔茨海默病的个体之间存在显着的统计差异。我们的现有研究表明,诊断出患有阿尔茨海默病和护理人员的管理护理居民之间存在可测量的语言差异。本文提出了结果将诊断患有阿尔茨海默病的管理护理居民与其他管理护理居民进行比较。分析结果表明,言语和词汇富裕统计数据可能不是良好的区别属性。然而,前方的话语和某些流利措施提供了区分患有的个体自发言论的语言特征的可靠性手段,并且不被诊断出患有阿尔茨海默病的疾病。两种机器学习算法能够对Alzheimer类型的痴呆症进行分类,精度高达80%。

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