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September 30, 20250 citationsOpen Access

Querying Climate Knowledge: Semantic Retrieval for Scientific Discovery

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MAMustapha AdamuQZQi ZhangHPHuitong Pan

Key Points

  • The knowledge graph improves access to climate science literature, enabling enhanced information discovery.
  • Structured semantic queries uncover connections between models, datasets, and teleconnection patterns for researchers.
  • Integration with large language models enhances transparency and reliability of climate-related question answering.
  • This approach goes beyond constructing a knowledge graph to demonstrate its practical value for climate researchers.

Abstract

The growing complexity and volume of climate science literature make it increasingly difficult for researchers to find relevant information across models, datasets, regions, and variables. This paper introduces a domain-specific Knowledge Graph (KG) built from climate publications and broader scientific texts, aimed at improving how climate knowledge is accessed and used. Unlike keyword based search, our KG supports structured, semantic queries that help researchers discover precise connections such as which models have been validated in specific regions or which datasets are commonly used with certain teleconnection patterns. We demonstrate how the KG answers such questions using Cypher queries, and outline its integration with large language models in RAG systems to improve transparency and reliability in climate-related question answering. This work moves beyond KG construction to show its real world value for climate researchers, model developers, and others who rely on accurate, contextual scientific information.

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Cite This Study

Adamu et al. (2025) studied this question.

synapsesocial.com/papers/68dc1e308a7d58c25ebb15ddhttps://doi.org/10.48550/arxiv.2509.10087
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Bridging data and discovery: a survey on knowledge graphs in AI for science2026 · 3 citations
  2. 2Knowledge graphs and large language models for prompt-based scientometric inquiry2026
  3. 3Reducing Semantic Noise in Historical RAG through Knowledge-Graph Constraints2026
  4. 4Semantification of scientific articles using knowledge graphs2026
  5. 5Semantically-Linked Ontological Knowledge Extraction Graph For Domain-Specific Knowledge Discovery In Scientific Literature2025