Interpretable multimodal classification for age-related macular degeneration diagnosis.

PLoS One

Laboratory of Ocular and Systemic Autoimmune Diseases, Faculty of Medicine, University of Chile, Santiago, Chile.

Published: November 2024

AI Article Synopsis

  • Explainable Artificial Intelligence (XAI) is advancing medical image analysis, helping doctors understand AI decisions better for improved diagnostics.
  • This study evaluates three XAI strategies using a deep learning model that analyzes both optical coherence tomography and infrared imaging to diagnose age-related macular degeneration, achieving a high accuracy of 0.94.
  • The findings suggest that combining grad-CAM and guided grad-CAM offers effective visual justifications while providing detailed insights into retinal damage, leading to recommendations for designing automated screening tests.

Article Abstract

Explainable Artificial Intelligence (XAI) is an emerging machine learning field that has been successful in medical image analysis. Interpretable approaches are able to "unbox" the black-box decisions made by AI systems, aiding medical doctors to justify their diagnostics better. In this paper, we analyze the performance of three different XAI strategies for medical image analysis in ophthalmology. We consider a multimodal deep learning model that combines optical coherence tomography (OCT) and infrared reflectance (IR) imaging for the diagnosis of age-related macular degeneration (AMD). The classification model is able to achieve an accuracy of 0.94, performing better than other unimodal alternatives. We analyze the XAI methods in terms of their ability to identify retinal damage and ease of interpretation, concluding that grad-CAM and guided grad-CAM can be combined to have both a coarse visual justification and a fine-grained analysis of the retinal layers. We provide important insights and recommendations for practitioners on how to design automated and explainable screening tests based on the combination of two image sources.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11554086PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0311811PLOS

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