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Revealing the Metabolic Profile of Brain Tumors for Diagnosis Purposes

机译:揭示脑肿瘤的代谢谱进行诊断目的

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The metabolic behavior of complex brain tumors, like Gliomas and Meningiomas, with respect to their type and grade was investigated in this paper. Towards this direction the smallest set of the most representative metabolic markers for each brain tumor type was identified, using ratios of peak areas of well established metabolites, from ~1H-MRSI (Proton Magnetic Resonance Spectroscopy Imaging) data of 24 patients and 4 healthy volunteers. A feature selection method that embeds Fisher's filter criterion into a wrapper selection scheme was applied; Support Vector Machine (SVM) and Least Squares-SVM (LS-SVM) classifiers were used to evaluate the ratio markers classification significance. The area under the Receiver Operating Characteristic curve (AUROC) was adopted to evaluate the classification significance. It is found that the NAA/CHO, CHO/S, MI/S ratios can be used to discriminate Gliomas and Meningiomas from Healthy tissue with AUROC greater than 0.98. Ratios CHO/S, CRE/S, MI/S, LAC/CRE, ALA/CRE, ALA/S and LIPS/CRE can identify type and grade differences in Gliomas giving AUROC greater than 0.98 apart from the scheme of Gliomas grade II vs grade III where 0.84 was recorded due to high heterogeneity. Finally NAA/CRE, NAA/S, CHO/S, MI/S and ALA/S manage to discriminate Gliomas from Meningiomas providing AUROC exceeding 0.90.
机译:在本文中研究了复杂脑肿瘤的代谢行为,如胶质瘤和脑膜瘤,如胶质瘤和脑膜瘤。朝着这个方向的最小集合的各脑肿瘤类型的最有代表性的代谢标记物的鉴定,使用良好建立的代谢物,从〜1H-MRSI(质子磁共振波谱成像)的24名患者和健康人4名数据的峰面积比。应用了将Fisher滤波器标准嵌入到包装选择方案中的特征选择方法;支持向量机(SVM)和最小二乘-SVM(LS-SVM)分类器用于评估比率标记分类意义。接收器操作特征曲线(AUROC)下的区域采用评估分类意义。结果发现,NAA / CHO,CHO / S,MI / S比率可用于区分胶质瘤和脑膜瘤免受渗透的健康组织大于0.98。 Ratios Cho / s,Cre / s,mi / s,lac / cre,Ala / Cre,Ala / s和嘴唇/ Cre,可以识别给予渗透的胶质瘤的类型和等级差异,除了Gliomas级Vs的方案之外大于0.98 III级,其中由于高异质性记录0.84。最后,NAA / CRE,NAA / S,CHO / S,MI / S和ALA / S设法从脑膜瘤中区分胶质瘤,从而提供超过0.90的AUROC。

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