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Multimodal Neuroimaging Feature Learning for Multiclass Diagnosis of Alzheimer's Disease

IEEE Transactions on Biomedical Engineering · 2014 · Vol. 62(4) · pp. 1132–1140
Siqi LiuSidong LiuWeidong CaiHangyu CheSonia PujolRon KikinisDagan FengMichael FulhamADNI ADNI

Abstract

The accurate diagnosis of Alzheimer's disease (AD) is essential for patient care and will be increasingly important as disease modifying agents become available, early in the course of the disease. Although studies have applied machine learning methods for the computer-aided diagnosis of AD, a bottleneck in the diagnostic performance was shown in previous methods, due to the lacking of efficient strategies for representing neuroimaging biomarkers. In this study, we designed a novel diagnostic framework with deep learning architecture to aid the diagnosis of AD. This framework uses a zero-masking strategy for data fusion to extract complementary information from multiple data modalities. Compared to the previous state-of-the-art workflows, our method is capable of fusing multimodal neuroimaging features in one setting and has the potential to require less labeled data. A performance gain was achieved in both binary classification and multiclass classification of AD. The advantages and limitations of the proposed framework are discussed.

Machine Learning in HealthcareBiomedical Text Mining and OntologiesDementia and Cognitive Impairment ResearchNeuroimagingComputer scienceArtificial intelligenceMachine learningModalitiesFeature (linguistics)BottleneckSensor fusionNeurosciencePsychology

MeSH terms

Alzheimer DiseaseBrainHumansImage Interpretation, Computer-AssistedNeuroimagingSupport Vector MachineMultimodal Imaging

Funding

  • Dementia Australia Research Foundation
Citations
608
FWCI
29.70
field-weighted impact
References
92
Percentile
100%
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Citations per year
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