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LiveHPS++: Robust and Coherent Motion Capture in Dynamic Free Environment

About

LiDAR-based human motion capture has garnered significant interest in recent years for its practicability in large-scale and unconstrained environments. However, most methods rely on cleanly segmented human point clouds as input, the accuracy and smoothness of their motion results are compromised when faced with noisy data, rendering them unsuitable for practical applications. To address these limitations and enhance the robustness and precision of motion capture with noise interference, we introduce LiveHPS++, an innovative and effective solution based on a single LiDAR system. Benefiting from three meticulously designed modules, our method can learn dynamic and kinematic features from human movements, and further enable the precise capture of coherent human motions in open settings, making it highly applicable to real-world scenarios. Through extensive experiments, LiveHPS++ has proven to significantly surpass existing state-of-the-art methods across various datasets, establishing a new benchmark in the field.

Yiming Ren, Xiao Han, Yichen Yao, Xiaoxiao Long, Yujing Sun, Yuexin Ma• 2024

Related benchmarks

TaskDatasetResultRank
Human Motion CaptureFreeMotion (test)
J Err (L)61.9
4
Human Motion CaptureSLOPER4D (test)
Joint Error (Local)42.7
4
Human Motion CaptureFreeMotion-OBJ (test)
J Err (L)58.1
4
Human Motion CaptureNoiseMotion (test)
Joint Error (Limb)34
4
Human Motion EstimationInterHuman
Joint Error (Local)41.7
2
Human Motion EstimationChi3D
Local Joint Error39.8
2
Human Motion EstimationHi4D
Joint Error (Local)47.5
2
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