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3D Scene Change Modeling With Consistent Multi-View Aggregation

About

Change detection plays a vital role in scene monitoring, exploration, and continual reconstruction. Existing 3D change detection methods often exhibit spatial inconsistency in the detected changes and fail to explicitly separate pre- and post-change states. To address these limitations, we propose SCaR-3D, a novel 3D scene change detection framework that identifies object-level changes from a dense-view pre-change image sequence and sparse-view post-change images. Our approach consists of a signed-distance-based 2D differencing module followed by multi-view aggregation with voting and pruning, leveraging the consistent nature of 3DGS to robustly separate pre- and post-change states. We further develop a continual scene reconstruction strategy that selectively updates dynamic regions while preserving the unchanged areas. We also contribute CCS3D, a challenging synthetic dataset that allows flexible combinations of 3D change types to support controlled evaluations. Extensive experiments demonstrate that our method achieves both high accuracy and efficiency, outperforming existing methods.

Zirui Zhou, Junfeng Ni, Shujie Zhang, Yixin Chen, Siyuan Huang• 2025

Related benchmarks

TaskDatasetResultRank
Change Detection3DGS-CD (test)
Precision99.8
18
Scene Change DetectionPASLCD
mIoU19.1
17
Change DetectionCCS3D Livingroom v1 (test)
F1 Score95.5
6
Change DetectionCCS3D Desk v1 (test)
F161
6
Change DetectionCCS3D Bedroom v1 (test)
F1 Score90.9
6
Change DetectionCCS3D Average v1 (test)
F1 Score72.4
6
Change DetectionCCS3D Bookcase v1 (test)
F1 Score42.3
6
ReconstructionCCS3D Full scenes
PSNR30.304
5
ReconstructionCCS3D Change-centric crops
PSNR21.837
5
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