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iRBSM: A Deep Implicit 3D Breast Shape Model

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We present the first deep implicit 3D shape model of the female breast, building upon and improving the recently proposed Regensburg Breast Shape Model (RBSM). Compared to its PCA-based predecessor, our model employs implicit neural representations; hence, it can be trained on raw 3D breast scans and eliminates the need for computationally demanding non-rigid registration -- a task that is particularly difficult for feature-less breast shapes. The resulting model, dubbed iRBSM, captures detailed surface geometry including fine structures such as nipples and belly buttons, is highly expressive, and outperforms the RBSM on different surface reconstruction tasks. Finally, leveraging the iRBSM, we present a prototype application to 3D reconstruct breast shapes from just a single image. Model and code publicly available at https://rbsm.re-mic.de/implicit.

Maximilian Weiherer, Antonia von Riedheim, Vanessa Br\'ebant, Bernhard Egger, Christoph Palm• 2024

Related benchmarks

TaskDatasetResultRank
3D surface reconstruction3D breast scans monocular RGB videos
CD2.06
9
Surface Reconstruction3D breast scans (test)
Chamfer Distance (CD)1.13
3
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