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Predictive Linguistic Features of Schizophrenia

机译:精神分裂症的预测语言特征

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Schizophrenia is one of the most disabling and difficult to treat of all human medical/health conditions, ranking in the top ten causes of disability worldwide. It has been a puzzle in part due to difficulty in identifying its basic, fundamental components. Several studies have shown that some manifestations of schizophrenia (e.g., the negative symptoms that include blunting of speech prosody, as well as the disorganization symptoms that lead to disordered language) can be understood from the perspective of linguistics. However, schizophrenia research has not kept pace with technologies in computational linguistics, especially in semantics and pragmatics. As such, we examine the writings of schizophrenia patients analyzing their syntax, semantics and pragmatics. In addition, we analyze tweets of (self proclaimed) schizophrenia patients who publicly discuss their diagnoses. For writing samples dataset, syntactic features are found to be the most successful in classification whereas for the less structured Twitter dataset, a combination of features performed the best.
机译:精神分裂症是所有人类医学/健康状况中最残障和最难治疗的疾病之一,在全球造成残疾的十大原因中排名第一。之所以令人困惑,部分原因是难以确定其基本组成部分。几项研究表明,可以从语言学角度理解精神分裂症的某些表现形式(例如,包括语言韵律变钝的消极症状以及导致语言混乱的混乱症状)。但是,精神分裂症的研究未能与计算语言学尤其是语义和语用学领域的技术保持同步。因此,我们检查了精神分裂症患者的著作,分析了他们的语法,语义和语用。此外,我们分析了公开宣布其诊断的(自称)精神分裂症患者的推文。对于编写样本数据集,语法特征在分类中被认为是最成功的,而对于结构化程度较低的Twi​​tter数据集而言,功能的组合表现最佳。

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