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athn-nik/sinc

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Sinc

SINC: Spatial Composition of 3D Human Motions for Simultaneous Action Generation Nikos Athanasiou · Mathis Petrovich · Michael J. Black · Gül Varol ICCV 2023 Official PyTorch implementation of the paper "SINC: Spatial Composition of 3D Human Motions for Simultaneous Action Generation"

Features

  • Motion Generation - Composes 3D human motions spatially for simultaneous action generation.

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常见问题解答

athn-nik/sinc 是做什么的?

SINC: Spatial Composition of 3D Human Motions for Simultaneous Action Generation Nikos Athanasiou · Mathis Petrovich · Michael J. Black · Gül Varol ICCV 2023 Official PyTorch implementation of the paper "SINC: Spatial Composition of 3D Human Motions for Simultaneous Action Generation"

athn-nik/sinc 的主要功能有哪些?

athn-nik/sinc 的主要功能包括:Motion Generation。

athn-nik/sinc 有哪些开源替代品?

athn-nik/sinc 的开源替代品包括: athn-nik/teach — TEACH: Temporal Action Compositions for 3D Humans Nikos Athanasiou · Mathis Petrovich · Michael J. Black · Gül… guytevet/motion-diffusion-model — This is a PyTorch deep learning framework and tool for human motion synthesis that generates 3D character animations… guytevet/motionclip — Official Pytorch implementation of the paper "MotionCLIP: Exposing Human Motion Generation to CLIP Space". mathux/temos — Official PyTorch implementation of the paper "TEMOS: Generating diverse human motions from textual descriptions", ECCV… mathux/tmr — Mathis Petrovich · Michael J. Black · Gül Varol. mingyuan-zhang/motiondiffuse — MotionDiffuse: Text-Driven Human Motion Generation with Diffusion Model.

Sinc 的开源替代方案

相似的开源项目,按与 Sinc 的功能重合度排序。
  • athn-nik/teachA

    athn-nik/teach

    0在 GitHub 上查看↗

    TEACH: Temporal Action Compositions for 3D Humans Nikos Athanasiou · Mathis Petrovich · Michael J. Black · Gül Varol 3DV 2022

    在 GitHub 上查看↗0
  • guytevet/motion-diffusion-modelGuyTevet 的头像

    GuyTevet/motion-diffusion-model

    4,054在 GitHub 上查看↗

    This is a PyTorch deep learning framework and tool for human motion synthesis that generates 3D character animations from text prompts or action descriptions. It functions as a text-to-motion generator that converts natural language and categorical labels into temporally consistent 3D skeletal movement sequences. The system utilizes a transformer-based diffusion model to iteratively denoise motion data. It includes capabilities for action-conditioned generation, monocular-to-3D motion lifting, and motion sequence editing using text constraints. The framework incorporates geometric motion con

    Python
    在 GitHub 上查看↗4,054
  • guytevet/motionclipGuyTevet 的头像

    GuyTevet/MotionCLIP

    497在 GitHub 上查看↗

    Official Pytorch implementation of the paper "MotionCLIP: Exposing Human Motion Generation to CLIP Space".

    Python
    在 GitHub 上查看↗497
  • mathux/temosMathux 的头像

    Mathux/TEMOS

    451在 GitHub 上查看↗

    Official PyTorch implementation of the paper "TEMOS: Generating diverse human motions from textual descriptions", ECCV 2022 (Oral).

    Python
    在 GitHub 上查看↗451
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