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A computational linguistic study of personal recovery in bipolar disorder

机译:双相障碍个人恢复的计算语言学研究

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Mental health research can benefit increasingly fruitfully from computational linguistics methods, given the abundant availability of language data in the internet and advances of computational tools. This interdisciplinary project will collect and analyse social media data of individuals diagnosed with bipolar disorder with regard to their recovery experiences. Personal recovery - living a satisfying and contributing life along symptoms of severe mental health issues - so far has only been investigated qualitatively with structured interviews and quantitatively with standardised questionnaires with mainly English-speaking participants in Western countries. Complementary to this evidence, computational linguistic methods allow us to analyse first-person accounts shared online in large quantities, representing unstructured settings and a more heterogeneous, multilingual population, to draw a more complete picture of the aspects and mechanisms of personal recovery in bipolar disorder.
机译:鉴于互联网中的语言数据和计算工具的进步,心理健康研究可以从计算语言学方法中逐渐逐渐受益。此跨学科项目将收集和分析在恢复经验方面诊断患有双相情感障碍的人的社交媒体数据。迄今为止,沿着严重心理健康问题的症状征收令人满意和促进生活的个人康复 - 迄今为止,仍然有质量地调查了结构化的访谈,并定量与西方国家的英语参与者的标准化问卷量。对本证据的补充,计算语言方法允许我们分析大量在线共享的第一人称账户,代表非结构化的环境和更异质的多语言人群,以利用双相障碍中个人康复的各个方面和机制的更完整的图像。

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