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Cluster Hidden Markov Models: An Application to Ecological Momentary Assessment of Schizophrenia

机译:聚类隐马尔可夫模型:在精神分裂症生态矩评估中的应用

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Ecological Momentary Assessment (EMA) tools are used to monitor the thoughts and feelings of people in their everyday lives over time. In this paper we examine the feasibility of multi-item, multi-subject Hidden Markov Models (HMMs) to identify response clusters in people with schizophrenia. Data comprise 49 participants from two randomised clinical trials using the mobile app ClinTouch, an EMA tool for daily monitoring of schizophrenia symptoms. The app was used for up to 12 weeks (median follow-up 83 days, 78% response rate). We find that a 3-cluster model with 3 states per cluster performs best amongst the configurations tested, and the feasibility of HMMs as applied to multi-item EMA data is demonstrated. However, there is substantial heterogeneity between participants within each hidden state for which sampling error due to short observation periods is a likely contributor. More data are needed to validate and refine the modelling approach taken here.
机译:生态矩评估(EMA)工具用于监视人们随着时间推移在日常生活中的想法和感受。在本文中,我们研究了多项目,多主题的隐马尔可夫模型(HMM)在精神分裂症患者中识别反应群的可行性。数据包括来自使用移动应用程序ClinTouch的两项随机临床试验的49名参与者,ClinTouch是用于每日监测精神分裂症症状的EMA工具。该应用程序使用了长达12周的时间(中位随访83天,响应率78%)。我们发现,在测试的配置中,每个群集具有3个状态的3群集模型表现最佳,并且证明了将HMM应用于多项目EMA数据的可行性。但是,在每个隐藏状态中的参与者之间存在很大的异质性,由于短观察周期而导致的采样误差可能是造成这种情况的原因。需要更多数据来验证和完善此处采用的建模方法。

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