cs.AI updates on arXiv.org 07月14日
Temporally Consistent Amodal Completion for 3D Human-Object Interaction Reconstruction
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本文提出一种新型框架,从单目视频中重建动态人-物交互,克服遮挡和时序不一致的挑战,通过无模态补全技术,提高动态场景中细节的恢复精度。

arXiv:2507.08137v1 Announce Type: cross Abstract: We introduce a novel framework for reconstructing dynamic human-object interactions from monocular video that overcomes challenges associated with occlusions and temporal inconsistencies. Traditional 3D reconstruction methods typically assume static objects or full visibility of dynamic subjects, leading to degraded performance when these assumptions are violated-particularly in scenarios where mutual occlusions occur. To address this, our framework leverages amodal completion to infer the complete structure of partially obscured regions. Unlike conventional approaches that operate on individual frames, our method integrates temporal context, enforcing coherence across video sequences to incrementally refine and stabilize reconstructions. This template-free strategy adapts to varying conditions without relying on predefined models, significantly enhancing the recovery of intricate details in dynamic scenes. We validate our approach using 3D Gaussian Splatting on challenging monocular videos, demonstrating superior precision in handling occlusions and maintaining temporal stability compared to existing techniques.

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单目视频 动态交互重建 无模态补全 遮挡处理 时序稳定性
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