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基于事件相关电位的机器学习在精神分裂症患者诊断中的应用

Application of Machine Learning to Diagnostics of Schizophrenia Patients Based on Event-Related Potentials.

作者信息

Shanarova Nadezhda, Pronina Marina, Lipkovich Mikhail, Ponomarev Valery, Müller Andreas, Kropotov Juri

机构信息

Theoretical Cybernetics Department, Saint Petersburg State University, 198504 St. Petersburg, Russia.

N.P. Bechtereva Institute of the Human Brain of the Russian Academy of Sciences, 197376 St. Petersburg, Russia.

出版信息

Diagnostics (Basel). 2023 Jan 30;13(3):509. doi: 10.3390/diagnostics13030509.

Abstract

Schizophrenia is a major psychiatric disorder that significantly reduces the quality of life. Early treatment is extremely important in order to mitigate the long-term negative effects. In this paper, a machine learning based diagnostics of schizophrenia was designed. Classification models were applied to the event-related potentials (ERPs) of patients and healthy subjects performing the visual cued Go/NoGo task. The sample consisted of 200 adult individuals ranging in age from 18 to 50 years. In order to apply the machine learning models, various features were extracted from the ERPs. The process of feature extraction was parametrized through a special procedure and the parameters of this procedure were selected through a grid-search technique along with the model hyperparameters. Feature extraction was followed by sequential feature selection transformation in order to prevent overfitting and reduce the computational complexity. Various models were trained on the resulting feature set. The best model was support vector machines with a sensitivity and specificity of 91% and 90.8%, respectively.

摘要

精神分裂症是一种严重的精神疾病,会显著降低生活质量。为了减轻长期负面影响,早期治疗极为重要。本文设计了一种基于机器学习的精神分裂症诊断方法。分类模型应用于执行视觉线索Go/NoGo任务的患者和健康受试者的事件相关电位(ERP)。样本包括200名年龄在18至50岁之间的成年人。为了应用机器学习模型,从ERP中提取了各种特征。特征提取过程通过一个特殊程序进行参数化,该程序的参数通过网格搜索技术与模型超参数一起选择。特征提取之后是顺序特征选择变换,以防止过拟合并降低计算复杂度。在得到的特征集上训练了各种模型。最佳模型是支持向量机,其灵敏度和特异性分别为91%和90.8%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b8e/9913945/181fec3953f9/diagnostics-13-00509-g001.jpg

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