A Novel Metric for Alzheimer's Disease Detection Based on Brain Complexity Analysis via Multiscale Fuzzy Entropy

Bioengineering (Basel). 2024 Mar 27;11(4):324. doi: 10.3390/bioengineering11040324.

Abstract

Alzheimer's disease (AD) is a neurodegenerative brain disorder that affects cognitive functioning and memory. Current diagnostic tools, including neuroimaging techniques and cognitive questionnaires, present limitations such as invasiveness, high costs, and subjectivity. In recent years, interest has grown in using electroencephalography (EEG) for AD detection due to its non-invasiveness, low cost, and high temporal resolution. In this regard, this work introduces a novel metric for AD detection by using multiscale fuzzy entropy (MFE) to assess brain complexity, offering clinicians an objective, cost-effective diagnostic tool to aid early intervention and patient care. To this purpose, brain entropy patterns in different frequency bands for 35 healthy subjects (HS) and 35 AD patients were investigated. Then, based on the resulting MFE values, a specific detection algorithm, able to assess brain complexity abnormalities that are typical of AD, was developed and further validated on 24 EEG test recordings. This MFE-based method achieved an accuracy of 83% in differentiating between HS and AD, with a diagnostic odds ratio of 25, and a Matthews correlation coefficient of 0.67, indicating its viability for AD diagnosis. Furthermore, the algorithm showed potential for identifying anomalies in brain complexity when tested on a subject with mild cognitive impairment (MCI), warranting further investigation in future research.

Keywords: AD diagnosis; Alzheimer’s disease; EEG; brain complexity; entropy; measurements; multiscale fuzzy entropy.

Grants and funding

This work was supported by the PNRR DM 351/2022—M4C1 contract number 38-412-18-DOT20JKTY9-413, and by the European Union—FSE-REACT-EU, PON Research and Innovation 2014-2020, DM 1061/2021 contract number DOT19X7NYL-2. This work was also supported in part by the “INtegrated Technologies and ENhanced SEnsing for cognition and rehabilitation (INTENSE)” project (F/310148/01-05/X56)— Italian Ministry of Enterprises and Made in Italy—Accordo Innovazione DM 31/12/2021 (CUP B69J23001290005 and B89J23002490005).