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akanazawa avatar

akanazawa/hmr

0
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1,665 stele·397 fork-uri·Python·6 vizualizări

Hmr

Project page for End-to-end Recovery of Human Shape and Pose

Features

  • 3D Human Mesh Recovery - End-to-end recovery of human shape and pose.
  • Computer Vision Research - End-to-end recovery of 3D human shape and pose.

Istoric stele

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Alternative open-source pentru Hmr

Proiecte open-source similare, clasificate după numărul de funcționalități comune cu Hmr.
  • gulvarol/bodynetAvatar gulvarol

    gulvarol/bodynet

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    BodyNet: Volumetric Inference of 3D Human Body Shapes, ECCV 2018

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  • facebookresearch/sam-3d-bodyAvatar facebookresearch

    facebookresearch/sam-3d-body

    2,628Vezi pe GitHub↗

    sam-3d-body is a machine learning framework for 3D human mesh recovery and pose estimation. It utilizes a 3D human mesh recovery model to reconstruct full-body meshes, including the body, hands, and feet, from a single image. The project implements a specialized extension of the Segment Anything Model to guide the extraction and refinement of human body shapes. This integration allows for prompt-guided mesh recovery, where 2D masks and keypoints constrain the inference of 3D pose and shape parameters. The system covers a range of computer vision capabilities, including 3D spatial alignment t

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  • facebookresearch/denseposeAvatar facebookresearch

    facebookresearch/DensePose

    7,252Vezi pe GitHub↗

    DensePose is a 3D human pose estimation framework designed to map 2D image pixels to a 3D surface-based model of the human body in real time. It functions as a computer vision anatomical mapper that projects 2D visual data onto a 3D surface to create detailed anatomical representations. The system operates as an image-to-3D texture transfer engine, localizing 2D image annotations onto 3D models to apply photographic textures to digital human representations. It uses a surface-based body mapping method to associate human pixels in an RGB image with specific coordinates on a 3D body template.

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  • facebookresearch/sam-3d-objectsAvatar facebookresearch

    facebookresearch/sam-3d-objects

    6,012Vezi pe GitHub↗

    SAM 3D Objects is a promptable foundation model that recovers 3D objects and human meshes from single images. It converts masked objects in a single photograph into full 3D models with pose, shape, texture, and layout, while also producing complete 3D human body meshes from the same input. The system integrates promptable segmentation to isolate objects and humans before reconstruction, then aligns the independently reconstructed 3D elements into a shared coordinate space. This enables scene-level understanding where multiple 3D reconstructions from the same image coexist in a common coordina

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Vezi toate cele 30 alternative pentru Hmr→

Întrebări frecvente

Ce face akanazawa/hmr?

Project page for End-to-end Recovery of Human Shape and Pose

Care sunt principalele funcționalități ale akanazawa/hmr?

Principalele funcționalități ale akanazawa/hmr sunt: 3D Human Mesh Recovery, Computer Vision Research.

Care sunt câteva alternative open-source pentru akanazawa/hmr?

Alternativele open-source pentru akanazawa/hmr includ: gulvarol/bodynet — BodyNet: Volumetric Inference of 3D Human Body Shapes, ECCV 2018. facebookresearch/sam-3d-body — sam-3d-body is a machine learning framework for 3D human mesh recovery and pose estimation. It utilizes a 3D human… facebookresearch/densepose — DensePose is a 3D human pose estimation framework designed to map 2D image pixels to a 3D surface-based model of the… facebookresearch/sam-3d-objects — SAM 3D Objects is a promptable foundation model that recovers 3D objects and human meshes from single images. It… idea-research/grounded-segment-anything — Grounded-Segment-Anything is a suite of specialized tools for multimodal visual analysis, text-based segmentation, and… zalandoresearch/fashion-mnist — This project is a computer vision benchmark and image classification dataset used to measure and compare the accuracy…