双相情感障碍
精神分裂症(面向对象编程)
免疫系统
犬尿氨酸
特质
精神科
心理学
医学
临床心理学
机器学习
免疫学
计算机科学
认知
生物
色氨酸
生物化学
氨基酸
程序设计语言
作者
Katrien Skorobogatov,Livia De Picker,Ching‐Lien Wu,Marianne Foiselle,Jean‐Romain Richard,Wahid Boukouaci,Jihène Bouassida,Kris Laukens,Pieter Meysman,Philippe Le Corvoisier,Caroline Barau,Manuel Morrens,Ryad Tamouza,Marion Leboyer
标识
DOI:10.1016/j.bbi.2024.08.013
摘要
Schizophrenia and bipolar disorder frequently face significant delay in diagnosis, leading to being missed or misdiagnosed in early stages. Both disorders have also been associated with trait and state immune abnormalities. Recent machine learning-based studies have shown encouraging results using diagnostic biomarkers in predictive models, but few have focused on immune-based markers. Our main objective was to develop supervised machine learning models to predict diagnosis and illness state in schizophrenia and bipolar disorder using only a panel of peripheral kynurenine metabolites and cytokines.
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