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Into the Bowels of Depression: Unravelling Medical Symptoms Associated with Depression by Applying Machine-Learning Techniques to a Community Based Population Sample

机译:进入抑郁症大肠:通过将机器学习技术应用于基于社区的人群样本,揭示与抑郁症相关的医学症状

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摘要

BackgroundDepression is commonly comorbid with many other somatic diseases and symptoms. Identification of individuals in clusters with comorbid symptoms may reveal new pathophysiological mechanisms and treatment targets. The aim of this research was to combine machine-learning (ML) algorithms with traditional regression techniques by utilising self-reported medical symptoms to identify and describe clusters of individuals with increased rates of depression from a large cross-sectional community based population epidemiological study.
机译:背景抑郁症通常与许多其他躯体疾病和症状并存。鉴定具有合并症的人群可能揭示新的病理生理机制和治疗目标。这项研究的目的是通过利用自我报告的医学症状,将机器学习(ML)算法与传统回归技术相结合,以基于大型横断面社区的人群流行病学研究来识别和描述抑郁症患病率上升的人群。

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