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NAISR: A 3D Neural Additive Model for Interpretable Shape Representation

16 March 2023
Yining Jiao
C. Zdanski
Julia Kimbell
Andrew Prince
Cameron P Worden
Samuel N Kirse
Christopher Rutter
Benjamin Shields
William Dunn
Jisan Mahmud
Marc Niethammer
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Abstract

Deep implicit functions (DIFs) have emerged as a powerful paradigm for many computer vision tasks such as 3D shape reconstruction, generation, registration, completion, editing, and understanding. However, given a set of 3D shapes with associated covariates there is at present no shape representation method which allows to precisely represent the shapes while capturing the individual dependencies on each covariate. Such a method would be of high utility to researchers to discover knowledge hidden in a population of shapes. For scientific shape discovery, we propose a 3D Neural Additive Model for Interpretable Shape Representation (NAISR\texttt{NAISR}NAISR) which describes individual shapes by deforming a shape atlas in accordance to the effect of disentangled covariates. Our approach captures shape population trends and allows for patient-specific predictions through shape transfer. NAISR\texttt{NAISR}NAISR is the first approach to combine the benefits of deep implicit shape representations with an atlas deforming according to specified covariates. We evaluate NAISR\texttt{NAISR}NAISR with respect to shape reconstruction, shape disentanglement, shape evolution, and shape transfer on three datasets: 1) Starman\textit{Starman}Starman, a simulated 2D shape dataset; 2) the ADNI hippocampus 3D shape dataset; and 3) a pediatric airway 3D shape dataset. Our experiments demonstrate that Starman\textit{Starman}Starman achieves excellent shape reconstruction performance while retaining interpretability. Our code is available at \href\href{https://github.com/uncbiag/NAISR}{https://github.com/uncbiag/NAISR}\href.

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