Video Based Machine Learning for Traffic Intersections
eBook - ePub

Video Based Machine Learning for Traffic Intersections

  1. 168 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Video Based Machine Learning for Traffic Intersections

Book details
Table of contents
Citations

About This Book

Video Based Machine Learning for Traffic Intersections describes the development of computer vision and machine learning-based applications for Intelligent Transportation Systems (ITS) and the challenges encountered during their deployment. This book presents several novel approaches, including a two-stream convolutional network architecture for vehicle detection, tracking, and near-miss detection; an unsupervised approach to detect near-misses in fisheye intersection videos using a deep learning model combined with a camera calibration and spline-based mapping method; and algorithms that utilize video analysis and signal timing data to accurately detect and categorize events based on the phase and type of conflict in pedestrian-vehicle and vehicle-vehicle interactions.

The book makes use of a real-time trajectory prediction approach, combined with aligned Google Maps information, to estimate vehicle travel time across multiple intersections. Novel visualization software, designed by the authors to serve traffic practitioners, is used to analyze the efficiency and safety of intersections. The software offers two modes: a streaming mode and a historical mode, both of which are useful to traffic engineers who need to quickly analyze trajectories to better understand traffic behavior at an intersection.

Overall, this book presents a comprehensive overview of the application of computer vision and machine learning to solve transportation-related problems. Video Based Machine Learning for Traffic Intersections demonstrates how these techniques can be used to improve safety, efficiency, and traffic flow, as well as identify potential conflicts and issues before they occur. The range of novel approaches and techniques presented offers a glimpse of the exciting possibilities that lie ahead for ITS research and development.

Key Features:

  • Describes the development and challenges associated with Intelligent Transportation Systems (ITS)
  • Provides novel visualization software designed to serve traffic practitioners in analyzing the efficiency and safety of an intersection
  • Has the potential to proactively identify potential conflict situations and develop an early warning system for real-time vehicle-vehicle and pedestrian-vehicle conflicts

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Yes, you can access Video Based Machine Learning for Traffic Intersections by Tania Banerjee, Xiaohui Huang, Aotian Wu, Ke Chen, Anand Rangarajan, Sanjay Ranka in PDF and/or ePUB format, as well as other popular books in Computer Science & Computer Science General. We have over one million books available in our catalogue for you to explore.

Information

Publisher
CRC Press
Year
2023
ISBN
9781000969771
Edition
1

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Title Page
  4. Copyright Page
  5. Dedication Page
  6. Contents
  7. Disclaimer
  8. List of Figures
  9. List of Tables
  10. Authors
  11. Chapter 1 Introduction
  12. Chapter 2 Detection, Tracking, and Classification
  13. Chapter 3 Near-miss Detection
  14. Chapter 4 Severe Events
  15. Chapter 5 Performance–Safety Trade-offs
  16. Chapter 6 Trajectory Prediction
  17. Chapter 7 Vehicle Tracking across Multiple Intersections
  18. Chapter 8 User Interface
  19. Chapter 9 Conclusion
  20. Appendix A Acknowledgments for Materials
  21. References
  22. Index