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Feasible Classified Models for Parkinson Disease from 99m Tc-TRODAT-1 SPECT Imaging

机译:99m Tc-TRODAT-1 SPECT成像对帕金森病的可行分类模型

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The neuroimaging techniques such as dopaminergic imaging using Single Photon Emission Computed Tomography (SPECT) with 99m Tc-TRODAT-1 have been employed to detect the stages of Parkinson’s disease (PD). In this retrospective study, a total of 202 99m Tc-TRODAT-1 SPECT imaging were collected. All of the PD patient cases were separated into mild (HYS Stage 1 to Stage 3) and severe (HYS Stage 4 and Stage 5) PD, according to the Hoehn and Yahr Scale (HYS) standard. A three-dimensional method was used to estimate six features of activity distribution and striatal activity volume in the images. These features were skewness, kurtosis, Cyhelsky’s skewness coefficient, Pearson’s median skewness, dopamine transporter activity volume, and dopamine transporter activity maximum. Finally, the data were modeled using logistic regression (LR) and support vector machine (SVM) for PD classification. The results showed that SVM classifier method produced a higher accuracy than LR. The sensitivity, specificity, PPV, NPV, accuracy, and AUC with SVM method were 0.82, 1.00, 0.84, 0.67, 0.83, and 0.85, respectively. Additionally, the Kappa value was shown to reach 0.68. This claimed that the SVM-based model could provide further reference for PD stage classification in medical diagnosis. In the future, more healthy cases will be expected to clarify the false positive rate in this classification model.
机译:神经成像技术,例如使用单光子发射计算机断层扫描(SPECT)和99m Tc-TRODAT-1的多巴胺能成像,已被用于检测帕金森氏病(PD)的阶段。在这项回顾性研究中,总共收集了202 99m Tc-TRODAT-1 SPECT成像。根据Hoehn和Yahr量表(HYS)标准,将所有PD患者病例分为轻度(HYS第1阶段至第3阶段)和重度(HYS第4阶段和第5阶段)PD。使用三维方法来估计图像中活动分布和纹状体活动量的六个特征。这些特征包括偏度,峰度,Cyhelsky的偏度系数,Pearson的中度偏度,多巴胺转运蛋白活性量和最大的多巴胺转运蛋白活性。最后,使用逻辑回归(LR)和支持向量机(SVM)对数据进行PD分类建模。结果表明,SVM分类器方法产生的准确度高于LR。 SVM方法的灵敏度,特异性,PPV,NPV,准确度和AUC分别为0.82、1.00、0.84、0.67、0.83和0.85。此外,Kappa值显示为达到0.68。这声称基于SVM的模型可以为医学诊断中的PD分期提供进一步的参考。将来,预计将有更多健康病例来阐明此分类模型中的假阳性率。

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