deep-high-resolution-net.pytorch VS mmpose

Compare deep-high-resolution-net.pytorch vs mmpose and see what are their differences.

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deep-high-resolution-net.pytorch mmpose
4 31
4,190 5,002
- 4.8%
0.0 8.0
over 1 year ago 4 days ago
Cuda Python
MIT License Apache License 2.0
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deep-high-resolution-net.pytorch

Posts with mentions or reviews of deep-high-resolution-net.pytorch. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-09-14.

mmpose

Posts with mentions or reviews of mmpose. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-11-21.

What are some alternatives?

When comparing deep-high-resolution-net.pytorch and mmpose you can also consider the following projects:

openpose - OpenPose: Real-time multi-person keypoint detection library for body, face, hands, and foot estimation

BlazePose-tensorflow - A third-party Tensorflow Implementation for paper "BlazePose: On-device Real-time Body Pose tracking".

openpifpaf - Official implementation of "OpenPifPaf: Composite Fields for Semantic Keypoint Detection and Spatio-Temporal Association" in PyTorch.

AlphaPose - Real-Time and Accurate Full-Body Multi-Person Pose Estimation&Tracking System

mediapipe - Cross-platform, customizable ML solutions for live and streaming media.

mmaction2 - OpenMMLab's Next Generation Video Understanding Toolbox and Benchmark

lightweight-human-pose-estimation.pytorch - Fast and accurate human pose estimation in PyTorch. Contains implementation of "Real-time 2D Multi-Person Pose Estimation on CPU: Lightweight OpenPose" paper.

AdelaiDet - AdelaiDet is an open source toolbox for multiple instance-level detection and recognition tasks.

UniPose - We propose UniPose, a unified framework for human pose estimation, based on our “Waterfall” Atrous Spatial Pooling architecture, that achieves state-of-art-results on several pose estimation metrics. Current pose estimation methods utilizing standard CNN architectures heavily rely on statistical postprocessing or predefined anchor poses for joint localization. UniPose incorporates contextual seg- mentation and joint localization to estimate the human pose in a single stage, with high accuracy, without relying on statistical postprocessing methods. The Waterfall module in UniPose leverages the efficiency of progressive filter- ing in the cascade architecture, while maintaining multi- scale fields-of-view comparable to spatial pyramid config- urations. Additionally, our method is extended to UniPose- LSTM for multi-frame processing and achieves state-of-the- art results for temporal pose estimation in Video. Our re- sults on multiple datase

mmfewshot - OpenMMLab FewShot Learning Toolbox and Benchmark