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research-article

Satellite image search in AgoraEO

Published: 01 August 2022 Publication History

Abstract

The growing operational capability of global Earth Observation (EO) creates new opportunities for data-driven approaches to understand and protect our planet. However, the current use of EO archives is very restricted due to the huge archive sizes and the limited exploration capabilities provided by EO platforms. To address this limitation, we have recently proposed MiLaN, a content-based image retrieval approach for fast similarity search in satellite image archives. MiLaN is a deep hashing network based on metric learning that encodes high-dimensional image features into compact binary hash codes. We use these codes as keys in a hash table to enable real-time nearest neighbor search and highly accurate retrieval. In this demonstration, we showcase the efficiency of MiLaN by integrating it with EarthQube, a browser and search engine within AgoraEO. EarthQube supports interactive visual exploration and Query-by-Example over satellite image repositories. Demo visitors will interact with EarthQube playing the role of different users that search images in a large-scale remote sensing archive by their semantic content and apply other filters.

References

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[n.d.]. DIAS Platforms. Retrieved March 15, 2022 from https://www.copernicus.eu/en/access-data/dias
[2]
Arne de Wall, Björn Deiseroth, Eleni Tzirita Zacharatou, Jorge-Arnulfo Quiané-Ruiz, Begüm Demir, and Volker Markl. 2021. Agora-EO: A Unified Ecosystem for Earth Observation - A Vision for Boosting EO Data Literacy -. In Proc. Big Data from Space (BiDS).
[3]
Subhankar Roy, Enver Sangineto, Begüm Demir, and Nicu Sebe. 2021. Metric-Learning-Based Deep Hashing Network for Content-Based Retrieval of Remote Sensing Images. IEEE Geoscience and Remote Sensing Letters 18, 2 (2021), 226--230.
[4]
Gencer Sumbul, Arne de Wall, Tristan Kreuziger, Filipe Marcelino, Hugo Costa, Pedro Benevides, Mário Caetane, Begüm Demir, and Volker Markl. 2021. BigEarthNet-MM: A Large-Scale, Multimodal, Multilabel Benchmark Archive for Remote Sensing Image Classification and Retrieval. IEEE GRSS Magazine 9, 3 (2021), 174--180.
[5]
G. Sumbul, J. Kang, and B. Demir. 2021. Deep Learning for Image Search and Retrieval in Large Remote Sensing Archives. In Deep Learning for the Earth Sciences: A Comprehensive Approach to Remote Sensing, Climate Science and Geosciences. John Wiley & Sons, Hoboken, NJ, USA, Chapter 11, 150--160.
[6]
Jonas Traub, Zoi Kaoudi, Jorge-Arnulfo Quiané-Ruiz, and Volker Markl. 2020. Agora: Bringing Together Datasets, Algorithms, Models and More in a Unified Ecosystem [Vision]. SIGMOD Rec. 49, 4 (2020), 6--11.

Cited By

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  • (2024)Analysis of Geospatial Data LoadingProceedings of the Tenth International Workshop on Testing Database Systems10.1145/3662165.3662761(36-42)Online publication date: 9-Jun-2024
  • (2024)Reaching the Edge of the Edge: Image Analysis in SpaceProceedings of the Eighth Workshop on Data Management for End-to-End Machine Learning10.1145/3650203.3663330(29-38)Online publication date: 9-Jun-2024
  • (2024)Multi-Backend Zonal Statistics Execution with RavenCompanion of the 2024 International Conference on Management of Data10.1145/3626246.3654730(532-535)Online publication date: 9-Jun-2024

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  1. Satellite image search in AgoraEO
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      cover image Proceedings of the VLDB Endowment
      Proceedings of the VLDB Endowment  Volume 15, Issue 12
      August 2022
      551 pages
      ISSN:2150-8097
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      VLDB Endowment

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      Published: 01 August 2022
      Published in PVLDB Volume 15, Issue 12

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      View all
      • (2024)Analysis of Geospatial Data LoadingProceedings of the Tenth International Workshop on Testing Database Systems10.1145/3662165.3662761(36-42)Online publication date: 9-Jun-2024
      • (2024)Reaching the Edge of the Edge: Image Analysis in SpaceProceedings of the Eighth Workshop on Data Management for End-to-End Machine Learning10.1145/3650203.3663330(29-38)Online publication date: 9-Jun-2024
      • (2024)Multi-Backend Zonal Statistics Execution with RavenCompanion of the 2024 International Conference on Management of Data10.1145/3626246.3654730(532-535)Online publication date: 9-Jun-2024

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