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Yuxuan Li, Yihang Chen, Yufeng Zhang, Jianfei Cai, Weiyao Lin
· 1 min read
ResearcharXiv cs.CV
FeCoSplat: Feedback-Guided Compression for Feed-Forward 3D Gaussian Splatting
arXiv:2609.33330v1 Announce Type: new
Abstract: Feed-forward 3D Gaussian Splatting (3DGS) enables efficient novel-view synthesis from sparse multi-view images, yet its representations remain costly to store and transmit. Existing approaches compress either the input images, incurring heavy receiver-side reconstruction, or the reconstructed Gaussian primitives, which are difficult to compress due to their heterogeneous and irregular attributes. We instead compress compact intermediate features, providing a better balance between compression efficiency and receiver-side complexity. Based on this paradigm, we propose FeCoSplat, a feedback-guided compression framework for feed-forward 3DGS. FeCoSplat first compresses multi-view features to obtain an intermediate 3DGS, whose rendered views are used as feedback to guide a second-stage compression for further refinement. The resulting bitstreams are decoded into a compact implicit state, from which the final Gaussian primitives are reconstructed with a lightweight predictor. Experiments demonstrate that FeCoSplat achieves favorable rate--distortion performance, particularly at low bitrates, while requiring only 3.45M parameters for receiver-side Gaussian reconstruction. Code will be released soon.
Original source
This story was published by arXiv cs.CV and written by Yuxuan Li, Yihang Chen, Yufeng Zhang, Jianfei Cai, Weiyao Lin. SyncAI.news shows a preview; the complete article is on the publisher's site.
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