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BodySLAM: Joint Camera Localisation, Mapping, and Human Motion Tracking

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arxiv 2205.02301 v3 pith:DPMPWNIE submitted 2022-05-04 cs.CV cs.RO

classification cs.CVcs.RO
keywords humancameramotionbodyslamestimatesvideobodycaptured
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Estimating human motion from video is an active research area due to its many potential applications. Most state-of-the-art methods predict human shape and posture estimates for individual images and do not leverage the temporal information available in video. Many "in the wild" sequences of human motion are captured by a moving camera, which adds the complication of conflated camera and human motion to the estimation. We therefore present BodySLAM, a monocular SLAM system that jointly estimates the position, shape, and posture of human bodies, as well as the camera trajectory. We also introduce a novel human motion model to constrain sequential body postures and observe the scale of the scene. Through a series of experiments on video sequences of human motion captured by a moving monocular camera, we demonstrate that BodySLAM improves estimates of all human body parameters and camera poses when compared to estimating these separately.

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Cited by 1 Pith paper

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  1. Improving Human Motion Plausibility with Body Momentum

    cs.CV 2025-09 conditional novelty 6.0 of 10

    A momentum-based loss term improves physical plausibility of reconstructed and generated human motion without sacrificing accuracy.

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