Using of Laplacian Re-decomposition image fusion algorithm for glioma grading with SWI, ADC, and FLAIR images

IF 0.7 Q4 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Polish Journal of Medical Physics and Engineering Pub Date : 2021-12-01 DOI:10.2478/pjmpe-2021-0031
Amir Khorasani, M. Tavakoli, M. Saboori
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引用次数: 3

Abstract

Abstract Introduction: Based on the tumor’s growth potential and aggressiveness, glioma is most often classified into low or high-grade groups. Traditionally, tissue sampling is used to determine the glioma grade. The aim of this study is to evaluate the efficiency of the Laplacian Re-decomposition (LRD) medical image fusion algorithm for glioma grading by advanced magnetic resonance imaging (MRI) images and introduce the best image combination for glioma grading. Material and methods: Sixty-one patients (17 low-grade and 44 high-grade) underwent Susceptibility-weighted image (SWI), apparent diffusion coefficient (ADC) map, and Fluid attenuated inversion recovery (FLAIR) MRI imaging. To fuse different MRI image, LRD medical image fusion algorithm was used. To evaluate the effectiveness of LRD in the classification of glioma grade, we compared the parameters of the receiver operating characteristic curve (ROC). Results: The average Relative Signal Contrast (RSC) of SWI and ADC maps in high-grade glioma are significantly lower than RSCs in low-grade glioma. No significant difference was detected between low and high-grade glioma on FLAIR images. In our study, the area under the curve (AUC) for low and high-grade glioma differentiation on SWI and ADC maps were calculated at 0.871 and 0.833, respectively. Conclusions: By fusing SWI and ADC map with LRD medical image fusion algorithm, we can increase AUC for low and high-grade glioma separation to 0.978. Our work has led us to conclude that, by fusing SWI and ADC map with LRD medical image fusion algorithm, we reach the highest diagnostic accuracy for low and high-grade glioma differentiation and we can use LRD medical fusion algorithm for glioma grading.
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利用拉普拉斯再分解图像融合算法对SWI、ADC和FLAIR图像进行胶质瘤分级
摘要简介:根据肿瘤的生长潜力和侵袭性,胶质瘤通常被分为低级别和高级别两类。传统上,组织取样被用来确定胶质瘤的等级。本研究旨在评估Laplacian Re-decomposition (LRD)医学图像融合算法用于高级磁共振成像(MRI)图像胶质瘤分级的效率,并引入胶质瘤分级的最佳图像组合。材料与方法:61例患者(低分级17例,高分级44例)行MRI敏感性加权像(SWI)、表观扩散系数(ADC)图和流体衰减反转恢复(FLAIR)成像。为了融合不同的MRI图像,采用LRD医学图像融合算法。为了评估LRD在胶质瘤分级中的有效性,我们比较了受试者工作特征曲线(ROC)的参数。结果:高级别胶质瘤SWI和ADC图的平均相对信号对比度(RSC)明显低于低级别胶质瘤的RSC。FLAIR图像显示低级别和高级别胶质瘤之间无显著差异。在我们的研究中,SWI和ADC图上低级别和高级别胶质瘤分化的曲线下面积(AUC)分别为0.871和0.833。结论:采用LRD医学图像融合算法融合SWI和ADC图谱,可将低、高级胶质瘤分离的AUC提高到0.978。我们的工作使我们得出结论,通过融合SWI和ADC地图与LRD医学图像融合算法,我们对低级别和高级别胶质瘤分化的诊断准确率最高,我们可以使用LRD医学融合算法进行胶质瘤分级。
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来源期刊
Polish Journal of Medical Physics and Engineering
Polish Journal of Medical Physics and Engineering RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
1.30
自引率
0.00%
发文量
19
期刊介绍: Polish Journal of Medical Physics and Engineering (PJMPE) (Online ISSN: 1898-0309; Print ISSN: 1425-4689) is an official publication of the Polish Society of Medical Physics. It is a peer-reviewed, open access scientific journal with no publication fees. The issues are published quarterly online. The Journal publishes original contribution in medical physics and biomedical engineering.
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