Using generative AI to investigate medical imagery models and datasets
Oran Lang, Doron Yaya-Stupp, Ilana Traynis, Heather Cole-Lewis, Chloe, R. Bennett, Courtney Lyles, Charles Lau, Michal Irani, Christopher Semturs,, Dale R. Webster, Greg S. Corrado, Avinatan Hassidim, Yossi Matias, Yun Liu,, Naama Hammel, Boris Babenko

TL;DR
This paper introduces a method combining AI and expert input to generate visual explanations for medical imaging models, revealing known, confounding, and novel signals across multiple modalities.
Contribution
It presents a novel four-step approach using StyleGAN-based image generation and expert analysis to interpret AI models in medical imaging, uncovering both physiological and socio-cultural signals.
Findings
Identified clinically known features and confounders in medical images.
Revealed physiologically plausible novel attributes.
Demonstrated applicability across three imaging modalities.
Abstract
AI models have shown promise in many medical imaging tasks. However, our ability to explain what signals these models have learned is severely lacking. Explanations are needed in order to increase the trust in AI-based models, and could enable novel scientific discovery by uncovering signals in the data that are not yet known to experts. In this paper, we present a method for automatic visual explanations leveraging team-based expertise by generating hypotheses of what visual signals in the images are correlated with the task. We propose the following 4 steps: (i) Train a classifier to perform a given task (ii) Train a classifier guided StyleGAN-based image generator (StylEx) (iii) Automatically detect and visualize the top visual attributes that the classifier is sensitive towards (iv) Formulate hypotheses for the underlying mechanisms, to stimulate future research. Specifically, we…
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Taxonomy
TopicsArtificial Intelligence in Healthcare and Education · Retinal Imaging and Analysis
