Automated Camera Calibration via Homography Estimation with GNNs

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7 Citations (Scopus)
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Abstract

Over the past few decades, a significant rise of camera-based applications for traffic monitoring has occurred. Governments and local administrations are increasingly relying on the data collected from these cameras to enhance road safety and optimize traffic conditions. However, for effective data utilization, it is imperative to ensure accurate and automated calibration of the involved cameras. This paper proposes a novel approach to address this challenge by leveraging the topological structure of intersections.We propose a framework involving the generation of a set of synthetic intersection viewpoint images from a bird'seye-view image, framed as a graph of virtual cameras to model these images. Using the capabilities of Graph Neural Networks, we effectively learn the relationships within this graph, thereby facilitating the estimation of a homography matrix. This estimation leverages the neighbourhood representation for any real-world camera and is enhanced by exploiting multiple images instead of a single match. In turn, the homography matrix allows the retrieval of extrinsic calibration parameters. As a result, the proposed framework demonstrates superior performance on both synthetic datasets and real-world cameras, setting a new state-of-the-art benchmark.

Original languageEnglish
Title of host publicationProceedings - 2024 IEEE Winter Conference on Applications of Computer Vision, WACV 2024
PublisherInstitute of Electrical and Electronics Engineers
Pages5864-5871
Number of pages8
ISBN (Electronic)9798350318920
DOIs
Publication statusPublished - 2024
Event2024 IEEE/CVF Winter Conference on Applications of Computer Vision, WACV 2024 - Waikoloa, United States
Duration: 3 Jan 20248 Jan 2024

Conference

Conference2024 IEEE/CVF Winter Conference on Applications of Computer Vision, WACV 2024
Abbreviated titleWACV 2024
Country/TerritoryUnited States
CityWaikoloa
Period3/01/248/01/24

Bibliographical note

Publisher Copyright:
© 2024 IEEE.

Keywords

  • Applications
  • Autonomous Driving
  • Structural engineering / civil engineering
  • Visualization

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