MEG Connectivity Analysis in Patients with Alzheimer’s Disease Using Cross Mutual Information and Spectral Coherence

被引:0
作者
Joan Francesc Alonso
Jesús Poza
Miguel Ángel Mañanas
Sergio Romero
Alberto Fernández
Roberto Hornero
机构
[1] Universitat Politècnica de Catalunya (UPC),Department of Automatic Control (ESAII), Biomedical Engineering Research Centre (CREB)
[2] CIBER de Bioingeniería,Biomedical Engineering Group, Department T.S.C.I.T., E.T.S. Ingenieros de Telecomunicación
[3] Biomateriales y Nanomedicina (CIBER-BBN),Centro de Magnetoencefalografía Dr. Pérez
[4] Universidad de Valladolid,Modrego
[5] Universidad Complutense de Madrid,undefined
来源
Annals of Biomedical Engineering | 2011年 / 39卷
关键词
Alzheimer’s disease; Magnetoencephalogram; Cross mutual information function (CMIF); Magnitude squared coherence (MSC);
D O I
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中图分类号
学科分类号
摘要
Alzheimer’s disease (AD) is an irreversible brain disorder which represents the most common form of dementia in western countries. An early and accurate diagnosis of AD would enable to develop new strategies for managing the disease; however, nowadays there is no single test that can accurately predict the development of AD. In this sense, only a few studies have focused on the magnetoencephalographic (MEG) AD connectivity patterns. This study compares brain connectivity in terms of linear and nonlinear couplings by means of spectral coherence and cross mutual information function (CMIF), respectively. The variables defined from these functions provide statistically significant differences (p < 0.05) between AD patients and control subjects, especially the variables obtained from CMIF. The results suggest that AD is characterized by both decreases and increases of functional couplings in different frequency bands as well as by an increase in regularity, that is, more evident statistical deterministic relationships in AD patients’ MEG connectivity. The significant differences obtained indicate that AD could disturb brain interactions causing abnormal brain connectivity and operation. Furthermore, the combination of coherence and CMIF features to perform a diagnostic test based on logistic regression improved the tests based on individual variables for its robustness.
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页码:524 / 536
页数:12
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