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traffic-detection

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A deep learning-based traffic object detection system using YOLOv8. The model detects vehicles and traffic signs such as cars, trucks, buses, traffic lights, and stop signs, providing bounding boxes and confidence scores. Trained on a filtered dataset and evaluated on real-world images.

  • Updated Apr 3, 2026
  • Jupyter Notebook

AI-powered traffic detection and vehicle classification system using YOLO11 for Bangladesh highway surveillance. Built with Ultralytics, OpenCV, and Python.

  • Updated Jul 21, 2026
  • Jupyter Notebook

Successfully developed an object detection model using Faster R-CNN to detect vehicles and traffic-related objects in real-time road scenes, supporting smart traffic monitoring and surveillance applications.

  • Updated Jul 4, 2025
  • Jupyter Notebook

REST API based on YOLOv8m for vehicle and traffic light signal detection (9 classes) in video — red-light violation monitoring. FastAPI + OpenCV. mAP50 63.2%, traffic lights >95%. Trained in Google Colab on a Roboflow dataset.

  • Updated Aug 26, 2026
  • Jupyter Notebook

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