Picasso: Holistic Scene Reconstruction with Physics-Constrained Sampling 文章

ArXiv CS.CV2026-06-02NEWSen作者: Xihang Yu, Rajat Talak, Lorenzo Shaikewitz, Luca Carlone

摘要

arXiv:2602.08058v3 Announce Type: replace Abstract: In the presence of occlusions and measurement noise, geometrically accurate scene reconstructions -- which fit the sensor data -- can still be physically incorrect. For instance, when estimating the poses and shapes of objects in the scene and importing the resulting estimates into a simulator, small errors might translate to implausible configurations including object interpenetration or unstable equilibrium. This makes it difficult to predict the dynamic behavior of the scene using a digital twin, an important step in simulation-based planning and control of contact-rich behaviors. In this paper, we posit that object pose and shape estimation requires reasoning holistically over the scene (instead of reasoning about each object in isolation), accounting for object interactions and physical plausibility.

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