Much of Geospatial Web Search Is Beyond Traditional GIS

Fuente: arXiv
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Main Authors: Ilyankou, Ilya, Cavazzi, Stefano, Haworth, James
Format: Preprint
Published: 2026
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author Ilyankou, Ilya
Cavazzi, Stefano
Haworth, James
author_facet Ilyankou, Ilya
Cavazzi, Stefano
Haworth, James
contents Web search queries concern place far more often than existing labelling schemes suggest, yet the landscape of geospatial web search queries - what people ask of place, and how often - remains poorly characterised at scale. We apply dense sentence embeddings, a lightweight SetFit classifier, and density-based clustering to the full MS MARCO corpus of 1.01 million real Bing queries without prior filtering for toponyms or spatial keywords, identifying 181,827 geospatial queries (18.0%), nearly threefold the 6.17% labelled as Location in the original annotations. The resulting taxonomy of 88 query categories reveals that geospatial web search is dominated by transactional and practical lookups: costs and prices alone account for 15.3% of geospatial queries, nearly twice the size of the entire physical geography theme. Much of this activity - costs, opening hours, contact details, weather, travel recommendations - falls outside the scope of what traditional GIS and knowledge graphs are built to serve. The categories vary substantially in the kind of answer they admit, from deterministic lookups answerable from spatial databases or knowledge graphs to evaluative or temporally volatile queries that require generative or real-time systems. We discuss implications for hybrid retrieval architectures and for benchmarks of geographic reasoning in large language models. We openly release the labelled dataset, classifier, and taxonomy.
format Preprint
id arxiv_https___arxiv_org_abs_2605_11336
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Much of Geospatial Web Search Is Beyond Traditional GIS
Ilyankou, Ilya
Cavazzi, Stefano
Haworth, James
Information Retrieval
Artificial Intelligence
Computation and Language
Human-Computer Interaction
Web search queries concern place far more often than existing labelling schemes suggest, yet the landscape of geospatial web search queries - what people ask of place, and how often - remains poorly characterised at scale. We apply dense sentence embeddings, a lightweight SetFit classifier, and density-based clustering to the full MS MARCO corpus of 1.01 million real Bing queries without prior filtering for toponyms or spatial keywords, identifying 181,827 geospatial queries (18.0%), nearly threefold the 6.17% labelled as Location in the original annotations. The resulting taxonomy of 88 query categories reveals that geospatial web search is dominated by transactional and practical lookups: costs and prices alone account for 15.3% of geospatial queries, nearly twice the size of the entire physical geography theme. Much of this activity - costs, opening hours, contact details, weather, travel recommendations - falls outside the scope of what traditional GIS and knowledge graphs are built to serve. The categories vary substantially in the kind of answer they admit, from deterministic lookups answerable from spatial databases or knowledge graphs to evaluative or temporally volatile queries that require generative or real-time systems. We discuss implications for hybrid retrieval architectures and for benchmarks of geographic reasoning in large language models. We openly release the labelled dataset, classifier, and taxonomy.
title Much of Geospatial Web Search Is Beyond Traditional GIS
topic Information Retrieval
Artificial Intelligence
Computation and Language
Human-Computer Interaction
url https://arxiv.org/abs/2605.11336