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2016 | OriginalPaper | Chapter

Functional Connectivity Network Fusion with Dynamic Thresholding for MCI Diagnosis

Authors : Xi Yang, Yan Jin, Xiaobo Chen, Han Zhang, Gang Li, Dinggang Shen

Published in: Machine Learning in Medical Imaging

Publisher: Springer International Publishing

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Abstract

The resting-state functional MRI (rs-fMRI) has been demonstrated as a valuable neuroimaging tool to identify mild cognitive impairment (MCI) patients. Previous studies showed network breakdown in MCI patients with thresholded rs-fMRI connectivity networks. Recently, machine learning techniques have assisted MCI diagnosis by integrating information from multiple networks constructed with a range of thresholds. However, due to the difficulty of searching optimal thresholds, they are often predetermined and uniformly applied to the entire network. Here, we propose an element-wise thresholding strategy to dynamically construct multiple functional networks, i.e., using possibly different thresholds for different elements in the connectivity matrix. These dynamically generated networks are then integrated with a network fusion scheme to capture their common and complementary information. Finally, the features extracted from the fused network are fed into support vector machine (SVM) for MCI diagnosis. Compared to the previous methods, our proposed framework can greatly improve MCI classification performance.

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Metadata
Title
Functional Connectivity Network Fusion with Dynamic Thresholding for MCI Diagnosis
Authors
Xi Yang
Yan Jin
Xiaobo Chen
Han Zhang
Gang Li
Dinggang Shen
Copyright Year
2016
DOI
https://doi.org/10.1007/978-3-319-47157-0_30

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