Fast Neural Inverse Kinematics on Human Body Motions

Fuente: arXiv
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Main Authors: Tolpin, David, Kagarlitsky, Sefy
Format: Preprint
Published: 2025
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author Tolpin, David
Kagarlitsky, Sefy
author_facet Tolpin, David
Kagarlitsky, Sefy
contents Markerless motion capture enables the tracking of human motion without requiring physical markers or suits, offering increased flexibility and reduced costs compared to traditional systems. However, these advantages often come at the expense of higher computational demands and slower inference, limiting their applicability in real-time scenarios. In this technical report, we present a fast and reliable neural inverse kinematics framework designed for real-time capture of human body motions from 3D keypoints. We describe the network architecture, training methodology, and inference procedure in detail. Our framework is evaluated both qualitatively and quantitatively, and we support key design decisions through ablation studies.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17996
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fast Neural Inverse Kinematics on Human Body Motions
Tolpin, David
Kagarlitsky, Sefy
Computer Vision and Pattern Recognition
Machine Learning
Markerless motion capture enables the tracking of human motion without requiring physical markers or suits, offering increased flexibility and reduced costs compared to traditional systems. However, these advantages often come at the expense of higher computational demands and slower inference, limiting their applicability in real-time scenarios. In this technical report, we present a fast and reliable neural inverse kinematics framework designed for real-time capture of human body motions from 3D keypoints. We describe the network architecture, training methodology, and inference procedure in detail. Our framework is evaluated both qualitatively and quantitatively, and we support key design decisions through ablation studies.
title Fast Neural Inverse Kinematics on Human Body Motions
topic Computer Vision and Pattern Recognition
Machine Learning
url https://arxiv.org/abs/2506.17996