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Examining the Dimensionality of Anxiety and Depression: a Latent Profile Approach to Modeling Transdiagnostic Features

机译:检查焦虑和抑郁的维度:一种对跨诊断特征进行建模的潜在剖面方法

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Depression and anxiety are highly prevalent psychological disorders; our understanding of these conditions remains limited. Efforts to explain anxiety and depression have been constrained in part by binary classification systems. Dimensional approaches to understanding psychopathology may be more effective. The present study used latent profile analysis (LPA) to assess whether unique subgroups exist within a tri-level model of anxiety and depression. Participants (N = 627) completed self-report questionnaires from which tri-level model factors were derived. LPA was conducted on those factors. A 4-profile model offered optimal fit to the data at baseline. This model was replicated at a second time point. Models derived included profiles labelled 'Mixed Fears,' 'Anxious Arousal,' 'Low Mood/Anhedonia,' and 'Sub-Clinical.' Profiles were validated at Time 1 using diagnostic status and clinical severity ratings associated with mood and anxiety presentations. Profiles demonstrated flexibility in accommodating breadth in clinical presentations and common comorbidities. Latent variable models may offer more ecologically valid approaches to understanding psychopathology.
机译:抑郁和焦虑是高度普遍的心理障碍;我们对这些情况的理解仍然有限。解释焦虑和抑郁的努力在一定程度上受到二元分类系统的制约。理解精神病理学的维度方法可能更有效。本研究使用潜在特征分析(LPA)来评估焦虑和抑郁的三水平模型中是否存在独特的亚组。参与者 (N = 627) 完成了自我报告问卷,从中得出了三级模型因子。LPA是根据这些因素进行的。4 剖面模型在基线时提供了与数据的最佳拟合。该模型在第二个时间点复制。得出的模型包括标记为“混合恐惧”、“焦虑唤醒”、“情绪低落/快感缺乏”和“亚临床”的特征。在第 1 时间使用与情绪和焦虑表现相关的诊断状态和临床严重程度评级对概况进行验证。概况在适应临床表现和常见合并症的广度方面表现出灵活性。潜在变量模型可能为理解精神病理学提供更生态有效的方法。

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