Literature DB >> 31396722

Automated Detection of Alzheimer's Disease Using Brain MRI Images- A Study with Various Feature Extraction Techniques.

U Rajendra Acharya1,2,3, Steven Lawrence Fernandes4, Joel En WeiKoh1, Edward J Ciaccio5, Mohd Kamil Mohd Fabell6, U John Tanik7, V Rajinikanth8, Chai Hong Yeong2.   

Abstract

The aim of this work is to develop a Computer-Aided-Brain-Diagnosis (CABD) system that can determine if a brain scan shows signs of Alzheimer's disease. The method utilizes Magnetic Resonance Imaging (MRI) for classification with several feature extraction techniques. MRI is a non-invasive procedure, widely adopted in hospitals to examine cognitive abnormalities. Images are acquired using the T2 imaging sequence. The paradigm consists of a series of quantitative techniques: filtering, feature extraction, Student's t-test based feature selection, and k-Nearest Neighbor (KNN) based classification. Additionally, a comparative analysis is done by implementing other feature extraction procedures that are described in the literature. Our findings suggest that the Shearlet Transform (ST) feature extraction technique offers improved results for Alzheimer's diagnosis as compared to alternative methods. The proposed CABD tool with the ST + KNN technique provided accuracy of 94.54%, precision of 88.33%, sensitivity of 96.30% and specificity of 93.64%. Furthermore, this tool also offered an accuracy, precision, sensitivity and specificity of 98.48%, 100%, 96.97% and 100%, respectively, with the benchmark MRI database.

Entities:  

Keywords:  Alzheimer’s disease; Brain MRI; Feature extraction; KNN classifier; Performance evaluation

Mesh:

Year:  2019        PMID: 31396722     DOI: 10.1007/s10916-019-1428-9

Source DB:  PubMed          Journal:  J Med Syst        ISSN: 0148-5598            Impact factor:   4.460


  39 in total

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Authors: 
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Authors:  Cynthia M Stonnington; Carlton Chu; Stefan Klöppel; Clifford R Jack; John Ashburner; Richard S J Frackowiak
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10.  A modified T-test feature selection method and its application on the HapMap genotype data.

Authors:  Nina Zhou; Lipo Wang
Journal:  Genomics Proteomics Bioinformatics       Date:  2007-12       Impact factor: 7.691

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