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Diffusion-based Generative Image Outpainting for Recovery of FOV-Truncated CT Images

2024-06-07Code Available0· sign in to hype

Michelle Espranita Liman, Daniel Rueckert, Florian J. Fintelmann, Philip Müller

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Abstract

Field-of-view (FOV) recovery of truncated chest CT scans is crucial for accurate body composition analysis, which involves quantifying skeletal muscle and subcutaneous adipose tissue (SAT) on CT slices. This, in turn, enables disease prognostication. Here, we present a method for recovering truncated CT slices using generative image outpainting. We train a diffusion model and apply it to truncated CT slices generated by simulating a small FOV. Our model reliably recovers the truncated anatomy and outperforms the previous state-of-the-art despite being trained on 87% less data.

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