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The "Vehicles Detection and Recognition with YOLO" repository is a comprehensive solution for detecting and recognizing vehicles in images and video streams, utilizing the YOLO (You Only Look Once) object detection framework. Leveraging the power of deep learning and computer vision, this project offers accurate and efficient detection and recognit

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Ahmed-Naserelden/Vehicles-Detection-Recognition

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Vehicle-Detection-Recognition

Overview

This repository offers a comprehensive solution for vehicle detection and recognition in images and videos. Leveraging state-of-the-art computer vision algorithms and deep learning techniques, the project aims to provide accurate and efficient detection and recognition of vehicles for various applications including traffic management, surveillance, and autonomous driving.

Key Features

  • Robust Detection: Utilizes advanced object detection algorithms such as YOLO (You Only Look Once) and SSD (Single Shot MultiBox Detector) to robustly detect vehicles in diverse environmental conditions.

  • Recognition Capabilities: Implements deep learning models for vehicle attribute recognition, including vehicle type, make, model, and license plate identification.

  • Real-time Performance: Optimized for real-time processing, enabling rapid detection and recognition of vehicles in streaming video feeds.

  • Customizable Architecture: Offers a modular architecture that allows users to easily customize and integrate detection and recognition models based on specific requirements and datasets.

  • Evaluation Metrics: Includes evaluation scripts to assess the accuracy and performance of the detection and recognition models using standard evaluation metrics such as precision, recall, and F1 score.

Contributing

Contributions from the community are welcome! Feel free to open issues, suggest enhancements, or submit pull requests to improve the project.

About

The "Vehicles Detection and Recognition with YOLO" repository is a comprehensive solution for detecting and recognizing vehicles in images and video streams, utilizing the YOLO (You Only Look Once) object detection framework. Leveraging the power of deep learning and computer vision, this project offers accurate and efficient detection and recognit

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