Utilizing 3D magnetic source imaging with landmark-based features and multi-classification for Alzheimer's Disease diagnosis

被引:4
作者
Al-Rahayfeh, Amer [1 ]
Atiewi, Saleh [1 ]
Almiani, Muder [2 ]
Jararweh, Mohammad [3 ]
Faezipour, Miad [4 ]
机构
[1] Al Hussein Bin Talal Univ, Maan 71111, Jordan
[2] Gulf Univ Sci & Technol, Hawally, Kuwait
[3] Minist Hlth, Amman, Jordan
[4] Purdue Univ, W Lafayette, IN 47907 USA
来源
CLUSTER COMPUTING-THE JOURNAL OF NETWORKS SOFTWARE TOOLS AND APPLICATIONS | 2024年 / 27卷 / 03期
关键词
Deep Polynomial Network; Magnetic resource imaging; Alzheimer; Landmark features; Mild cognitive impairment; DIFFERENTIAL-DIAGNOSIS; TEXTURE;
D O I
10.1007/s10586-023-04103-w
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Improvements in medical imaging have accelerated the rise of computerized healthcare. Namely, Magnetic Resource Imaging (MRI) has been shown to be a reliable method for detecting Mild Cognitive Impairment (MCI), the prenominal stage of Alzheimer's Disease (AD) (MCI). Complex nonlinear registration and tissue segmentation are needed in order to extract features from structural MRI, which increases computation costs. We suggest the diagnosis of AD utilizing landmark-based features and multi-classification from 3D MR images to solve this issue. Preprocessing, Patch extraction, Feature learning and fusion, and Classification are the successive modules that make up our proposed work. Three processes-Noise removal, Skull stripping, and Normalization-make up the Preprocessing module. A Distributed based Adaptive Median Filter is used to remove noise, while the Hybrid Watershed Algorithm is used to remove the skull. Particle Swarm Optimization is used to choose the most suitable landmarks for patch extraction. By increasing the effectiveness of the feature learning process, this method of patch extraction also tends to increase accuracy. A Deep Polynomial Network is used to carry out a new feature learning technique. The Genetic Algorithm is used to extract the best features from the learned features. The chosen features are then combined. The given fused features are then divided into four groups by a Support Vector Machine (SVM) classifier: AD, stable MCI (sMCI), progressive MCI (pMCI), and normal control. We put our ideas into practice utilizing the MATLAB R2017b toolkit. The proposed work outperformed the SLbL technique in terms of Accuracy, Sensitivity, Specificity, F-Score, and computation time.
引用
收藏
页码:2635 / 2651
页数:17
相关论文
共 37 条
[21]   Classification of Alzheimer's Disease Using Whole Brain Hierarchical Network [J].
Liu, Jin ;
Li, Min ;
Lan, Wei ;
Wu, Fang-Xiang ;
Pan, Yi ;
Wang, Jianxin .
IEEE-ACM TRANSACTIONS ON COMPUTATIONAL BIOLOGY AND BIOINFORMATICS, 2018, 15 (02) :624-632
[22]   Alzheimer's Disease Classification Based on Individual Hierarchical Networks Constructed With 3-D Texture Features [J].
Liu, Jin ;
Wang, Jianxin ;
Hu, Bin ;
Wu, Fang-Xiang ;
Pan, Yi .
IEEE TRANSACTIONS ON NANOBIOSCIENCE, 2017, 16 (06) :428-437
[23]   Anatomical Landmark Based Deep Feature Representation for MR Images in Brain Disease Diagnosis [J].
Liu, Mingxia ;
Zhang, Jun ;
Nie, Dong ;
Yap, Pew-Thian ;
Shen, Dinggang .
IEEE JOURNAL OF BIOMEDICAL AND HEALTH INFORMATICS, 2018, 22 (05) :1476-1485
[24]   T-test based Alzheimer's disease diagnosis with multi-feature in MRIs [J].
Liu, Zhenbing ;
Xu, Tao ;
Ma, Chao ;
Gao, Chunyang ;
Yang, Huihua .
MULTIMEDIA TOOLS AND APPLICATIONS, 2018, 77 (22) :29687-29703
[25]  
Luk Collin C, 2018, Alzheimers Dement (Amst), V10, P755, DOI 10.1016/j.dadm.2018.09.002
[26]   Early Diagnosis of Alzheimer's Disease Based on Convolutional Neural Networks [J].
Mehmood, Atif ;
Abugabah, Ahed ;
AlZubi, Ahmed Ali ;
Sanzogni, Louis .
COMPUTER SYSTEMS SCIENCE AND ENGINEERING, 2022, 43 (01) :305-315
[27]   Structured sparsity regularized multiple kernel learning for Alzheimer's disease diagnosis [J].
Peng, Jialin ;
Zhu, Xiaofeng ;
Wang, Ye ;
An, Le ;
Shen, Dinggang .
PATTERN RECOGNITION, 2019, 88 :370-382
[28]   Symptom onset in autosomal dominant Alzheimer disease A systematic review and meta-analysis [J].
Ryman, Davis C. ;
Acosta-Baena, Natalia ;
Aisen, Paul S. ;
Bird, Thomas ;
Danek, Adrian ;
Fox, Nick C. ;
Goate, Alison ;
Frommelt, Peter ;
Ghetti, Bernardino ;
Langbaum, Jessica B. S. ;
Lopera, Francisco ;
Martins, Ralph ;
Masters, Colin L. ;
Mayeux, Richard P. ;
McDade, Eric ;
Moreno, Sonia ;
Reiman, Eric M. ;
Ringman, John M. ;
Salloway, Steve ;
Schofield, Peter R. ;
Sperling, Reisa ;
Tariot, Pierre N. ;
Xiong, Chengjie ;
Morris, John C. ;
Bateman, Randall J. .
NEUROLOGY, 2014, 83 (03) :253-260
[29]   Reproducible evaluation of classification methods in Alzheimer's disease: Framework and application to MRI and PET data [J].
Samper-Gonzalez, Jorge ;
Burgos, Ninon ;
Bottani, Simona ;
Fontanella, Sabrina ;
Lu, Pascal ;
Marcoux, Arnaud ;
Routier, Alexandre ;
Guillon, Jeremy ;
Bacci, Michael ;
Wen, Junhao ;
Bertrand, Anne ;
Bertin, Hugo ;
Habert, Marie-Odile ;
Durrleman, Stanley ;
Evgeniou, Theodoros ;
Colliot, Olivier .
NEUROIMAGE, 2018, 183 :504-521
[30]   RETRACTED: A voxel based morphometry approach for identifying Alzheimer from MRI images (Retracted article. See DEC, 2022) [J].
Saravanakumar, S. ;
Thangaraj, P. .
CLUSTER COMPUTING-THE JOURNAL OF NETWORKS SOFTWARE TOOLS AND APPLICATIONS, 2019, 22 (Suppl 6) :14081-14089