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AI-Supported Smart Search for Multi-Period Historical Maps Using the mapKurator Place Name Index

  • Pi Ling Pai
  • , Hsiang Hsi Lu
  • , Wen Rong Su
  • , Hsiung Ming Liao
  • , Ta Chien Chan
  • , Yijun Lin
  • , Yao Yi Chiang

Research output: Contribution to journalArticlepeer-review

Abstract

Placenames, which link maps to historical records are vital for understanding spatiotemporal societal changes. Traditional workflows require scanned historical maps to be georeferenced before publishing in GIS-readable formats or web map services. Querying, however, typically remains limited to layer metadata, hindering historical placename identification across periods. This paper presents a complete pipeline that integrates batched placename extraction and large language models (LLMs) to enable smart spatial search. Using mapKurator, we batch-extracted text from 20th-century Web Map Tile Service format maps with simultaneous geolocation capture. Indexed placenames were stored in an Elasticsearch database integrated with OpenAI’s LLMs to extract spatiotemporal information from free-text user queries. An elastic, fuzzy-search engine retrieved relevant results exportable for GIS applications. By merging LLMs with mapKurator, a smart spatial search system was developed that efficiently compiles, visualizes, and overlays historical map layers on a Web GIS platform, significantly enhancing the searchability and analysis of historical maps.

Original languageEnglish (US)
Pages (from-to)23-45
Number of pages23
JournalJournal of Map and Geography Libraries
Volume22
Issue number1
DOIs
StatePublished - 2026

Bibliographical note

Publisher Copyright:
© 2025 The Author(s). Published with license by Taylor & Francis Group, LLC.

Keywords

  • GeoAI
  • Large language models
  • historical map
  • place name
  • spatiotemporal

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