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Deep Transfer Learning-Based Foot No-Ball Detection in Live Cricket Match
Sudhakar Das1, Tanjim Mahmud1, Dilshad Islam2
1Rangamati Science and Technology University, Rangamati, Bangladesh.
Computational Intelligence and Neuroscience
|June 29, 2023
Summary
This study introduces an AI framework for automatic no-ball detection in cricket, achieving 0.98 accuracy. The system enhances decision-making and reduces errors, improving the game
Area of Science:
- Computer Science
- Artificial Intelligence
- Sports Technology
Background:
- Automation and AI, particularly machine learning, are increasingly used for decision-making across various fields.
- AI technologies are being integrated into sports like cricket to reduce human error and improve game analysis.
- Cricket's unpredictable nature makes accurate umpiring crucial, as incorrect decisions can significantly impact game outcomes.
Purpose of the Study:
- To develop an automated system for accurate no-ball detection in cricket using AI.
- To enhance the fairness and integrity of cricket matches by minimizing umpiring errors.
- To create a smart system that reduces controversies arising from judgment mistakes and fosters a healthier playing environment.
Main Methods:
- Data collection and processing, focusing on the bowler's end through cropping.
- Image enhancement techniques to improve clarity and reduce noise in visual data.
- Training and testing optimized Convolutional Neural Networks (CNNs), including modified pre-trained models like VGG16 and VGG19.
Main Results:
- The proposed framework achieved an accuracy of 0.98 for automatic no-ball detection.
- Both VGG16 and VGG19 models reached 0.98 accuracy.
- VGG16 was selected as the proposed model due to its superior recall value.
Conclusions:
- The developed AI framework provides a highly accurate solution for automatic no-ball detection in cricket.
- The system demonstrates the potential of AI in sports to improve officiating and reduce disputes.
- The use of enhanced image processing and optimized CNN models, like VGG16, is effective for real-time sports analysis.
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