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ELMGS: Enhancing Memory and Computation Scalability Through coMpression for 3D Gaussian Splatting

  • Institut Polytechnique de Paris
  • Kyung Hee University

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Résumé

3D models have recently been popularized by the potentiality of end-to-end training offered first by Neural Radiance Fields and most recently by 3D Gaussian Splatting models. The latter has the big advantage of naturally providing fast training convergence and high editability. However, as the research around these is still in its infancy, there is still a gap in the literature regarding the model's scalability. In this work, we propose an approach enabling both memory and computation scalability of such models. More specifically, we propose an iterative pruning strategy that removes redundant information encoded in the model. We also enhance compressibility for the model by including a differentiable quantization and entropy coding estimator in the optimization strategy. Our results on popular benchmarks showcase the effectiveness of the proposed approach and open the road to the broad deployability of such a solution even on resource-constrained devices.

langue originaleAnglais
titreProceedings - 2025 IEEE Winter Conference on Applications of Computer Vision, WACV 2025
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages2591-2600
Nombre de pages10
ISBN (Electronique)9798331510831
Les DOIs
étatPublié - 1 janv. 2025
Evénement2025 IEEE/CVF Winter Conference on Applications of Computer Vision, WACV 2025 - Tucson, États-Unis
Durée: 28 févr. 20254 mars 2025

Série de publications

NomProceedings - 2025 IEEE Winter Conference on Applications of Computer Vision, WACV 2025

Une conférence

Une conférence2025 IEEE/CVF Winter Conference on Applications of Computer Vision, WACV 2025
Pays/TerritoireÉtats-Unis
La villeTucson
période28/02/254/03/25

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