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This repo implements multi-person pose estimation using the efficient MoveNet architecture. With pre-trained models, fine-tuning scripts, and data utilities, this project offers a flexible and easy-to-use tool for real-time pose estimation in various applications.

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HashemRawashdeh/Multi-Person-Pose-Estimation

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Problem Statement

Multi-person pose estimation is a fundamental issue in sports analysis, which entails tracking the movements of numerous players concurrently. Precisely detecting and tracing the body postures of players can furnish valuable insights into their performance, enabling coaches and analysts to make well-informed decisions. However, existing pose estimation methodologies often encounter difficulties in dealing with the intricate and rapidly evolving situations that are typical in sports, leading to imprecise or partial pose estimations. Thus, there is an exigency for a resilient and real-time multi-person pose estimation system custom-built for sports analysis, proficient in managing swift motions and occlusions while maintaining optimal accuracy.

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This repo implements multi-person pose estimation using the efficient MoveNet architecture. With pre-trained models, fine-tuning scripts, and data utilities, this project offers a flexible and easy-to-use tool for real-time pose estimation in various applications.

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