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December 8, 2025The Journal of Machine Learning for Biomedical Imaging2 citations

Denoising Diffusion Models for Anomaly Localization in Medical Images

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JSJulia A. Schnabel

Key Points

  • This review summarizes the role of denoising diffusion models in anomaly localization for medical images.
  • Overview of denoising diffusion models and their application to image reconstruction.
  • Discussion of various supervision schemes including fully, semi, weakly, self-supervised, and unsupervised methods.
  • Evaluation of datasets and metrics for anomaly localization.
  • Highlights state-of-the-art methods for anomaly localization.
  • Identifies challenges such as detection bias and domain shift.
  • Discusses the importance of model interpretability.

Abstract

This review explores anomaly localization in medical images using denoising diffusion models. After providing a brief methodological background of these models, including their application to image reconstruction and their conditioning using guidance mechanisms, we provide an overview of available datasets and evaluation metrics suitable for their application to anomaly localization in medical images. In this context, we discuss supervision schemes ranging from fully supervised segmentation to semi-supervised, weakly supervised, self-supervised, and unsupervised methods, and provide insights into the effectiveness and limitations of these approaches. Furthermore, we highlight open challenges in anomaly localization, including detection bias, domain shift, computational cost, and model interpretability. Our goal is to provide an overview of the current state of the art in the field, outline research gaps, and highlight the potential of diffusion models for robust anomaly localization in medical images.

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Cite This Study

Julia A. Schnabel (2025) studied this question.

synapsesocial.com/papers/69362f5d4fa91c937236dc44https://doi.org/10.59275/j.melba.2025-c586
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Diffusion model for medical image denoising, reconstruction and translation2025 · 23 citations
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  4. 4Enhancing Diffusion Models Towards Anomaly‐Aware Reconstructions for Medical Image Anomaly Detection2026
  5. 5Diffusion Models with Implicit Guidance for Medical Anomaly Detection2024 · 2 citations