YoNet: A Neural Network for Yoga Pose Classification

Author:

Ashraf Faisal Bin,Islam Muhammad Usama,Kabir Md Rayhan,Uddin JasimORCID

Abstract

AbstractYoga has become an integral part of human life to maintain a healthy body and mind in recent times. With the growing, fast-paced life and work from home, it has become difficult for people to invest time in the gymnasium for exercises. Instead, they like to do assisted exercises at home where pose recognition techniques play the most vital role. Recognition of different poses is challenging due to proper dataset and classification architecture. In this work, we have proposed a deep learning-based model to identify five different yoga poses from comparatively fewer amounts of data. We have compared our model’s performance with some state-of-the-art image classification models-ResNet, InceptionNet, InceptionResNet, Xception and found our architecture superior. Our proposed architecture extracts spatial, and depth features from the image individually and considers them for further calculation in classification. The experimental results show that it achieved 94.91% accuracy with 95.61% precision.

Publisher

Springer Science and Business Media LLC

Subject

Computer Science Applications,Computer Networks and Communications,Computer Graphics and Computer-Aided Design,Computational Theory and Mathematics,Artificial Intelligence,General Computer Science

Cited by 22 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. PETSAI-Ext: Physical Education Teaching Support with Artificial Intelligence;SN Computer Science;2024-09-02

2. CAM based fine-grained spatial feature supervision for hierarchical yoga pose classification using multi-stage transfer learning;Expert Systems with Applications;2024-09

3. Yoga Pose Classification Using CNN with PReLU Activation;2024 International Conference on Advancements in Power, Communication and Intelligent Systems (APCI);2024-06-21

4. Analyzing Yoga Pose Recognition: A Comparison of MediaPipe and YOLO Keypoint Detection with Ensemble Techniques;2024 3rd International Conference on Applied Artificial Intelligence and Computing (ICAAIC);2024-06-05

5. Leveraging MediaPipe and YOLO Keypoint Detection in Ensemble Approaches for Workout Pose Recognition;2024 2nd International Conference on Advancement in Computation & Computer Technologies (InCACCT);2024-05-02

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