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Morphological Feature Visualization of Alzheimer’s Disease via Multidirectional Perception GAN

Yu Wen, Baiying Lei, Shuqiang Wang, Yong Liu, Zhiguang Feng, Yong Hu, Yanyan Shen, Michael K. Ng

2022IEEE Transactions on Neural Networks and Learning Systems122 citationsDOI

Abstract

The diagnosis of early stages of Alzheimer's disease (AD) is essential for timely treatment to slow further deterioration. Visualizing the morphological features for early stages of AD is of great clinical value. In this work, a novel multidirectional perception generative adversarial network (MP-GAN) is proposed to visualize the morphological features indicating the severity of AD for patients of different stages. Specifically, by introducing a novel multidirectional mapping mechanism into the model, the proposed MP-GAN can capture the salient global features efficiently. Thus, using the class discriminative map from the generator, the proposed model can clearly delineate the subtle lesions via MR image transformations between the source domain and the predefined target domain. Besides, by integrating the adversarial loss, classification loss, cycle consistency loss, and L1 penalty, a single generator in MP-GAN can learn the class discriminative maps for multiple classes. Extensive experimental results on Alzheimer's Disease Neuroimaging Initiative (ADNI) dataset demonstrate that MP-GAN achieves superior performance compared with the existing methods. The lesions visualized by MP-GAN are also consistent with what clinicians observe.

Topics & Concepts

Discriminative modelComputer scienceArtificial intelligenceSalientNeuroimagingGenerator (circuit theory)Pattern recognition (psychology)Feature (linguistics)Deep learningDomain (mathematical analysis)Generative adversarial networkClass (philosophy)Generative grammarNeurosciencePsychologyMathematicsPower (physics)PhilosophyQuantum mechanicsPhysicsMathematical analysisLinguisticsCell Image Analysis TechniquesAI in cancer detectionGenerative Adversarial Networks and Image Synthesis
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