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Updating Street Maps using Changes Detected in Satellite Imagery

Published: 04 November 2021 Publication History

Abstract

Accurately maintaining digital street maps is labor-intensive. To address this challenge, much work has studied automatically processing geospatial data sources such as GPS trajectories and satellite images to reduce the cost of maintaining digital maps. An end-to-end map update system would first process geospatial data sources to extract insights, and second leverage those insights to update and improve the map. However, prior work largely focuses on the first step of this pipeline: these map extraction methods infer road networks from scratch given geospatial data sources (in effect creating entirely new maps), but do not address the second step of leveraging this extracted information to update the existing map data. In this paper, we first explain why current map extraction techniques yield low accuracy when extended to update existing maps. We then propose a novel method that leverages the progression of satellite imagery over time to substantially improve accuracy. Our approach first compares satellite images captured at different times to identify portions of the physical road network that have visibly changed, and then updates the existing map accordingly. We show that our change-based approach reduces error rates four-fold.

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Cited By

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  • (2023)Vector Road Map Updating from High-Resolution Remote-Sensing Images with the Guidance of Road Intersection Change Detection and Directed Road TracingRemote Sensing10.3390/rs1507184015:7(1840)Online publication date: 30-Mar-2023
  • (2023)Multimodal Deep Learning for Robust Road Attribute DetectionACM Transactions on Spatial Algorithms and Systems10.1145/36181089:4(1-25)Online publication date: 20-Nov-2023
  • (2023)SatlasPretrain: A Large-Scale Dataset for Remote Sensing Image Understanding2023 IEEE/CVF International Conference on Computer Vision (ICCV)10.1109/ICCV51070.2023.01538(16726-16736)Online publication date: 1-Oct-2023
  • Show More Cited By

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  1. Updating Street Maps using Changes Detected in Satellite Imagery

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    cover image ACM Conferences
    SIGSPATIAL '21: Proceedings of the 29th International Conference on Advances in Geographic Information Systems
    November 2021
    700 pages
    ISBN:9781450386647
    DOI:10.1145/3474717
    This work is licensed under a Creative Commons Attribution International 4.0 License.

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    New York, NY, United States

    Publication History

    Published: 04 November 2021

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    Author Tags

    1. automatic map update
    2. machine learning

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    Overall Acceptance Rate 257 of 1,238 submissions, 21%

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    View all
    • (2023)Vector Road Map Updating from High-Resolution Remote-Sensing Images with the Guidance of Road Intersection Change Detection and Directed Road TracingRemote Sensing10.3390/rs1507184015:7(1840)Online publication date: 30-Mar-2023
    • (2023)Multimodal Deep Learning for Robust Road Attribute DetectionACM Transactions on Spatial Algorithms and Systems10.1145/36181089:4(1-25)Online publication date: 20-Nov-2023
    • (2023)SatlasPretrain: A Large-Scale Dataset for Remote Sensing Image Understanding2023 IEEE/CVF International Conference on Computer Vision (ICCV)10.1109/ICCV51070.2023.01538(16726-16736)Online publication date: 1-Oct-2023
    • (2022)Lane-Level Street Map Extraction from Aerial Imagery2022 IEEE/CVF Winter Conference on Applications of Computer Vision (WACV)10.1109/WACV51458.2022.00156(1496-1505)Online publication date: Jan-2022

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