Abstract:BackgroundCadaveric computed tomography (CT) image segmentation is a difficult task to solve, especially when applied to whole‐body image volumes. Traditional algorithms require preprocessing using registration, or highly conserved organ morphologies. These requirements cannot be fulfilled by cadaveric specimens, so deep learning must be used to overcome this limitation. Further, the widespread use of 2D algorithms for volumetric data ignores the role of anatomical context. The use of 3D spatial context for vo… Show more
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