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Combination of Grey Matter and White Matter Features for Early Prediction of Posttraumatic Stress Disorder

机译:灰质和白质特征的组合,对创伤性应激障碍的早期预测

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Posttraumatic stress disorder (PTSD) is a prevalent psychiatric disorder. In previous researches, there are few studies about structural and functional alterations of the whole brain simultaneously about PTSD prediction. Early alterations could provide evidence of early diagnosis and treatment. Early diagnosis of PTSD plays an important role during the treatment. In this work, we extract discriminant features from multi-modal images and implement classification-based prediction for PTSD onset. Specifically, discriminant features are a collection of measures derived from grey matter (GM) and white matter (WM). We choose cortical thickness of GM and three descriptions of WM connection which are fiber count, fractional anisotropy (FA), and mean diffusivity (MD). After applying automated anatomical labeling (AAL) to parcellate the whole brain into 90 regions-of-interest (ROIs), the descriptions can be quantified. Then, a weighted clustering coefficient of every ROI connected with the remaining ROIs is extracted as feature. GM features and WM features are combined and selected automatically, which are later utilized by support vector machine (SVM) for early identification of the patients. The classification accuracy is around 79.86% as the area of receiver operating characteristic (ROC) curve is 0.816 evaluated via dual leave-one-out cross-validation.
机译:术后应激障碍(PTSD)是一种普遍的精神疾病。在以前的研究中,关于PTSD预测的同时对整个大脑的结构和功能改变很少有研究。早期改变可以提供早期诊断和治疗的证据。早期诊断PTSD在治疗过程中发挥着重要作用。在这项工作中,我们从多模态图像中提取判别特征,并实现基于分类的PTSD的预测。具体地,判别特征是衍生自灰质(GM)和白质(WM)的措施的集合。我们选择GM的皮质厚度和三个WM连接描述,即光纤计数,分数各向异性(FA)和平均扩散性(MD)。在将自动解剖标记(aal)施加到90个兴趣区(ROI)中,可以量化描述。然后,将与剩余的ROI连接的每个ROI的加权聚类系数作为特征提取。 GM功能和WM特征是自动组合和选择的,后来通过支持向量机(SVM)使用,用于早期鉴定患者。分类精度约为79.86%,因为通过双重休假交叉验证评估了接收器的区域0.816。

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