Literature DB >> 33306476

Multiview Feature Learning With Multiatlas-Based Functional Connectivity Networks for MCI Diagnosis.

Yu Zhang, Han Zhang, Ehsan Adeli, Xiaobo Chen, Mingxia Liu, Dinggang Shen.   

Abstract

Functional connectivity (FC) networks built from resting-state functional magnetic resonance imaging (rs-fMRI) has shown promising results for the diagnosis of Alzheimer's disease and its prodromal stage, that is, mild cognitive impairment (MCI). FC is usually estimated as a temporal correlation of regional mean rs-fMRI signals between any pair of brain regions, and these regions are traditionally parcellated with a particular brain atlas. Most existing studies have adopted a predefined brain atlas for all subjects. However, the constructed FC networks inevitably ignore the potentially important subject-specific information, particularly, the subject-specific brain parcellation. Similar to the drawback of the "single view" (versus the "multiview" learning) in medical image-based classification, FC networks constructed based on a single atlas may not be sufficient to reveal the underlying complicated differences between normal controls and disease-affected patients due to the potential bias from that particular atlas. In this study, we propose a multiview feature learning method with multiatlas-based FC networks to improve MCI diagnosis. Specifically, a three-step transformation is implemented to generate multiple individually specified atlases from the standard automated anatomical labeling template, from which a set of atlas exemplars is selected. Multiple FC networks are constructed based on these preselected atlas exemplars, providing multiple views of the FC network-based feature representations for each subject. We then devise a multitask learning algorithm for joint feature selection from the constructed multiple FC networks. The selected features are jointly fed into a support vector machine classifier for multiatlas-based MCI diagnosis. Extensive experimental comparisons are carried out between the proposed method and other competing approaches, including the traditional single-atlas-based method. The results indicate that our method significantly improves the MCI classification, demonstrating its promise in the brain connectome-based individualized diagnosis of brain diseases.

Entities:  

Mesh:

Year:  2022        PMID: 33306476     DOI: 10.1109/TCYB.2020.3016953

Source DB:  PubMed          Journal:  IEEE Trans Cybern        ISSN: 2168-2267            Impact factor:   11.448


  8 in total

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Authors:  Feng Zhao; Zhongwei Han; Dapeng Cheng; Ning Mao; Xiaobo Chen; Yuan Li; Deming Fan; Peiqiang Liu
Journal:  Front Neurosci       Date:  2022-02-10       Impact factor: 4.677

2.  Adaptive Multimodal Neuroimage Integration for Major Depression Disorder Detection.

Authors:  Qianqian Wang; Long Li; Lishan Qiao; Mingxia Liu
Journal:  Front Neuroinform       Date:  2022-04-29       Impact factor: 3.739

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Authors:  Xiaoya Wei; Guangxia Shi; Jianfeng Tu; Hang Zhou; Yanshan Duan; Chin Kai Lee; Xu Wang; Cunzhi Liu
Journal:  Front Neurol       Date:  2022-02-17       Impact factor: 4.003

4.  A Long Short-Term Memory Biomarker-Based Prediction Framework for Alzheimer's Disease.

Authors:  Anza Aqeel; Ali Hassan; Muhammad Attique Khan; Saad Rehman; Usman Tariq; Seifedine Kadry; Arnab Majumdar; Orawit Thinnukool
Journal:  Sensors (Basel)       Date:  2022-02-14       Impact factor: 3.576

5.  Three-way parallel group independent component analysis: Fusion of spatial and spatiotemporal magnetic resonance imaging data.

Authors:  Shile Qi; Rogers F Silva; Daoqiang Zhang; Sergey M Plis; Robyn Miller; Victor M Vergara; Rongtao Jiang; Dongmei Zhi; Jing Sui; Vince D Calhoun
Journal:  Hum Brain Mapp       Date:  2021-11-22       Impact factor: 5.038

6.  Unlocking the Memory Component of Alzheimer's Disease: Biological Processes and Pathways across Brain Regions.

Authors:  Nikolas Dovrolis; Maria Nikou; Alexandra Gkrouzoudi; Nikolaos Dimitriadis; Ioanna Maroulakou
Journal:  Biomolecules       Date:  2022-02-06

7.  Multi-View Feature Enhancement Based on Self-Attention Mechanism Graph Convolutional Network for Autism Spectrum Disorder Diagnosis.

Authors:  Feng Zhao; Na Li; Hongxin Pan; Xiaobo Chen; Yuan Li; Haicheng Zhang; Ning Mao; Dapeng Cheng
Journal:  Front Hum Neurosci       Date:  2022-07-15       Impact factor: 3.473

8.  Classification and Interpretability of Mild Cognitive Impairment Based on Resting-State Functional Magnetic Resonance and Ensemble Learning.

Authors:  Mengjie Hu; Yang Yu; Fangping He; Yujie Su; Kan Zhang; Xiaoyan Liu; Ping Liu; Ying Liu; Guoping Peng; Benyan Luo
Journal:  Comput Intell Neurosci       Date:  2022-08-19
  8 in total

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