Design and Implementation of a Real-Time Object Detection Surveillance System
Student: Oluwakayode Paul Oladeji (Project, 2025)
Department of Computer Science
Adeseun Ogundoyin Polytechnic, Eruwa, Oyo State
Abstract
Real-time object detection systems play a crucial role in various applications, including security surveillance, traffic monitoring, and smart technology. This project focuses on designing and implementing a system capable of identifying and tracking objects in images, videos, and live camera feeds. The system is developed to be efficient, accurate, and user-friendly, leveraging advanced machine learning techniques to meet these goals.
The project employs the YOLO (You Only Look Once) algorithm, a cutting-edge deep learning model known for its speed and accuracy in object detection tasks. YOLO was selected for its ability to process images and videos efficiently while maintaining high detection accuracy. The system is implemented using Python and integrates powerful libraries such as OpenCV for image processing and TensorFlow for machine learning tasks.
To evaluate the system, metrics like precision, recall, F1-score, and mean Average Precision (mAP) are used to assess accuracy, while frame per second (FPS) measurements determine its real-time processing capability. Robustness is tested by deploying the system in diverse environments with varying lighting conditions, occlusions, and complex backgrounds. Benchmark datasets like COCO are used for cross-validation, enabling a performance comparison with existing models to ensure reliability under different scenarios.
In conclusion, the real-time object detection system proves its effectiveness through accurate detection, fast processing, and robust performance in challenging conditions. Future improvements may include enhancing the system to detect small or partially hidden objects, manage overlapping objects, track across multiple camera feeds, recognize actions or behaviors, and adapt to dynamic environments like crowded areas, fast-moving objects, or adverse weather conditions.
Keywords
For the full publication, please contact the author directly at: oladejipaul2018@gmail.com
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- University of Ilorin, Kwara State 400
- University of Jos, Jos, Plateau State 19
- University of Lagos 18
- University of Maiduguri ( - Elearning), Maiduguri, Borno State 3
- University of Maiduguri, Borno State 109
- University of Nigeria, Nsukka, Enugu State 269
- University of Port Harcourt Teaching Hospital, Port Harcourt , River State 5
- University of Port-Harcourt, Rivers State 174
- University of Uyo, Akwa Ibom State 206
- Usmanu Danfodio University, Sokoto, Sokoto State 245