Yoga Pose Detection using Deep Learning | Python Final Year IEEE Project 2024

JP INFOTECH PROJECTS
JP INFOTECH PROJECTS
108 بار بازدید - 2 ماه پیش - Yoga Pose Detection using Deep
Yoga Pose Detection using Deep Learning | Python Final Year IEEE Project 2024 - 2025. 🛒Buy Link: bit.ly/4cUI3vL (or) To buy this project in ONLINE, Contact: 🔗Email: [email protected], 🌐Website: www.jpinfotech.org/ 📌Project Title: Yoga Pose Detection using Deep Learning. 💡Implementation: Python. 🔬Algorithm / Model Used: VGG16 Model and SVC (Support Vector Classifier). 🌐Web Framework: Flask. 🖥️Frontend: HTML, CSS, JavaScript. 💰Cost (In Indian Rupees): Rs.5000/ 📌 IEEE Base Paper Title: Yoga Pose Recognition using Deep Learning. 📌IEEE Base paper Abstract: Yoga pose detection holds significant importance in various aspects of the yoga practice and its integration with technology. The importance of yoga lies in its ability to promote physical health, mental well-being, stress reduction, improved focus, emotional balance, resilience, spiritual growth, and a holistic approach to life. With the increasing popularity of yoga, there is a growing need for technological advancements to support practitioners and instructors in monitoring and refining their practice. The paper begins by outlining the significance of automated yoga pose detection, highlighting the potential benefits it offers in providing real time feedback, enhancing self-correction, and optimizing performance. It explores the existing literature on computer vision and machine learning techniques applied to human pose estimation and their applicability to yoga pose detection. Based on a thorough review of state-of-the-art methodologies, the research paper proposes a yoga pose detection that combines multiple modalities, including RGB images, depth maps, and skeletal joint data. The proposed system leverages deep learning algorithms, such as convolutional neural networks (CNNs) and long short-term memory (LSTM), to precisely recognize and continuously monitor yoga poses. Moreover, the paper discusses the challenges associated with pose variation, occlusion, and complex body movements within yoga practice. It explores strategies for data augmentation, model optimization, and performance evaluation to ensure robustness and accuracy of the proposed detection system. The practical implications of the research are discussed, emphasizing the potential for widespread adoption of yoga pose detection systems in various settings, including yoga studios, fitness centers, and home practice environments. The paper concludes by outlining future research directions and the potential for integrating the proposed system with emerging technologies, such as augmented reality (AR) and virtual reality (VR), to enhance the yoga experience and facilitate remote instruction. Overall, this research paper contributes to the advancement of automated yoga pose analysis, offering a comprehensive framework that can revolutionize the way yoga is practiced, taught, and evaluated, ultimately promoting accessibility, precision, and effectiveness in the pursuit of physical and mental well-being. 📌REFERENCE: Prachi Kulkarni, Shailesh Gawai, Siddhi Bhabad, Abhilasha Patil, Shraddha Choudhari, “Yoga Pose Recognition using Deep Learning”, 2024 International Conference on Emerging Smart Computing and Informatics (ESCI), IEEE CONFERENCE, 2024. #python #pythonprojects #machinelearningproject #yoga #yogapose #yogaposes #poses #pythonprogramming #pythonprojectforbeginners #pythonprojectideas #pythonmachinelearning #machinelearning #machinelearningpython #finalyearproject #ieeeprojects #finalyearprojects #datascience #datascienceproject #artificialintelligenceproject #projects #deeplearning #deeplearningproject #computerscienceproject #deeplearningprojects #majorprojects #academicprojects #majorproject
2 ماه پیش در تاریخ 1403/04/07 منتشر شده است.
108 بـار بازدید شده
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