Histo-Diffusion: A Diffusion Super-Resolution Method for Digital Pathology with Comprehensive Quality Assessment
Xuan Xu, Saarthak Kapse, Prateek Prasanna

TL;DR
Histo-Diffusion is a diffusion-based super-resolution method tailored for digital pathology, improving image quality and evaluation with comprehensive metrics, surpassing GANs in performance for histopathology images.
Contribution
The paper introduces Histo-Diffusion, a novel diffusion-based super-resolution technique with a histology-specific evaluation strategy, addressing limitations of GANs in digital pathology.
Findings
Histo-Diffusion outperforms GAN-based methods in super-resolution tasks.
The method supports multi-resolution image generation.
Comprehensive evaluation metrics validate improved image quality.
Abstract
Digital pathology has advanced significantly over the last decade, with Whole Slide Images (WSIs) encompassing vast amounts of data essential for accurate disease diagnosis. High-resolution WSIs are essential for precise diagnosis but technical limitations in scanning equipment and variablity in slide preparation can hinder obtaining these images. Super-resolution techniques can enhance low-resolution images; while Generative Adversarial Networks (GANs) have been effective in natural image super-resolution tasks, they often struggle with histopathology due to overfitting and mode collapse. Traditional evaluation metrics fall short in assessing the complex characteristics of histopathology images, necessitating robust histology-specific evaluation methods. We introduce Histo-Diffusion, a novel diffusion-based method specially designed for generating and evaluating super-resolution…
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Taxonomy
TopicsMedical Imaging Techniques and Applications · AI in cancer detection · Cell Image Analysis Techniques
MethodsDiffusion
