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@SMPLCap

SMPLCap

Welcome to SMPLCap

GitHub User's stars

At SMPLCap, we focus on advancing the field of 3D Human Pose and Shape Estimation (HPS). Our goal is to accurately capture detailed full-body human motion—including hands and facial expressions—from various input sources, using parametric human body models such as SMPL and SMPL-X as our standard output representation.

We develop methods and tools to recover full-body pose and shape from diverse input modalities. Our research focuses on EHPS foundation models and benchmarks, robust estimation in perspective-distorted images, world-grounded applications, and one-stage pipelines with integrated localization.

News

  • [2025-05-15] Release of ADHMR (ICML'25)
  • [2025-04-11] Projects and homepage updated
  • [2025-04-10] 🚀🚀🚀Announcing the launch of SMPLCap 🚀🚀🚀

Our projects

Foundation Models

  • [SMPL-X] [arXiv'25] SMPLest-X: An extended version of SMPLer-X with stronger foundation models.
  • [SMPL-X] [NeurIPS'23] SMPLer-X: Scaling up EHPS towards a family of generalist foundation models.
  • [SMPL] [NeurIPS'22] HMR-Benchmarks: A comprehensive benchmark of HPS datasets, backbones, and training strategies.

World-Grounded

  • [SMPL-X] [ECCV'24] WHAC: World-grounded human pose and camera estimation from monocular videos.

All-in-One-Stage

  • [SMPL-X] [CVPR'24] AiOS: An all-in-one-stage pipeline combining detection and 3D human reconstruction.

Robustness

  • [SMPL-X] [NeurIPS'23] RoboSMPLX: A framework to enhance the robustness of whole-body pose and shape estimation.

Perspective Distortion

  • [SMPL] [ICCV'23] Zolly: 3D human mesh reconstruction from perspective-distorted images.

Point Cloud

  • [SMPL] [arXiv'23] PointHPS: 3D HPS from point clouds captured in real-world settings.

Alignment

  • [SMPL-X] [ICML'25] ADHMR: A framework to align diffusion-based human mesh recovery methods via direct preference optimization.

Contact

For inquiries about our research, collaborations, or opportunities, please reach out to us.

Popular repositories Loading

  1. SMPLer-X SMPLer-X Public

    [NeurIPS 2023] Official Code for "SMPLer-X: Scaling Up Expressive Human Pose and Shape Estimation"

    Python 1.1k 78

  2. AiOS AiOS Public

    [CVPR 2024] Official Code for "AiOS: All-in-One-Stage Expressive Human Pose and Shape Estimation

    Python 310 9

  3. SMPLest-X SMPLest-X Public

    Official code for "SMPLest-X: Ultimate Scaling for Expressive Human Pose and Shape Estimation"

    Python 130 8

  4. WHAC WHAC Public

    [ECCV 2024] Official Code for "WHAC: World-grounded Humans and Cameras"

    Python 119 1

  5. hmr-benchmarks hmr-benchmarks Public

    Python 118 4

  6. Zolly Zolly Public

    [ICCV2023 oral] Zolly: Zoom Focal Length Correctly for Perspective-Distorted Human Mesh Reconstruction

    Python 102 1

Repositories

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