Real-Time Spatio-Temporally Localized Activity Detection by Tracking Body Keypoints
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Updated
Oct 27, 2024 - Python
Real-Time Spatio-Temporally Localized Activity Detection by Tracking Body Keypoints
deep learning sex position classifier
This repository allows you to classify 40 different human actions. Pose detection, estimation and classification is also performed. Poses are classified into sitting, upright and lying down.
Keras implementation of Human Action Recognition for the data set State Farm Distracted Driver Detection (Kaggle)
Source code for "Learning Graph Convolutional Network for Skeleton-based Human Action Recognition by Neural Searching", AAAI2020
Surveillance Perspective Human Action Recognition Dataset: 7759 Videos from 14 Action Classes, aggregated from multiple sources, all cropped spatio-temporally and filmed from a surveillance-camera like position.
A Comprehensive Tutorial on Video Modeling
This repository contains the MPOSE2021 Dataset for short-time pose-based Human Action Recognition (HAR).
[TPAMI 2020] "Privacy-Preserving Deep Action Recognition: An Adversarial Learning Framework and A New Dataset" by Zhenyu Wu, Haotao Wang, Zhaowen Wang, Hailin Jin, and Zhangyang Wang
Computer Vision Project : Action Recognition on UCF101 Dataset
[AAAI-2024] HARDVS: Revisiting Human Activity Recognition with Dynamic Vision Sensors
This repository provides implementation of a baseline method and our proposed methods for efficient Skeleton-based Human Action Recognition.
MSR Action Recognition Datasets and Codes
Activity Recognition using Temporal Optical Flow Convolutional Features and Multi-Layer LSTM
Deep learning model that predicts human action in a given video feed using pose estimation
机器学习实现基于手机六轴数据的人体动作识别和计数功能。并利用云服务器和微信小程序在手机上实现。 Use machine learning to achieve human activity recognition and counting function based on cell phone six-axis data. Achieve it on phone using ECS and WeChat mini-program.
Human Activity Recognition Research Repository
Code for HAR-GCNN: Deep Graph CNNs for Human Activity Recognition From Highly Unlabeled Mobile Sensor Data, IEEE PerCom CoMoRea 2022
A skeleton-based real-time online action recognition project, classifying and recognizing base on framewise joints, which can be used for safety surveilence.
This includes a novel method to measure the quality of the actions performed in Olympic weightlifting using human action recognition in videos. Human action recognition is a well-studied problem in computer vision and on the other hand action quality assessment is researched and experimented comparatively low. This is due to the lack of datasets…
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