Lessons Learned from AskGDR: Usage and Impact Analysis of the Geothermal Data Repository's AI Research Assistant: Preprint

Research output: Contribution to conferencePaper

Abstract

In October of 2024, the Department of Energy's (DOE) Geothermal Data Repository (GDR) team officially launched AskGDR, an AI research assistant resulting from the integration of a Large Language Model (LLM) with the metadata and supporting documents associated with GDR datasets. AskGDR allows GDR users to ask deeper questions about the origin of datasets, the methods used to collect them, and the findings they help support. Using Retrieval Augmented Generation (RAG), AskGDR can be used to summarize findings spread across dozens of papers and technical reports or to extract relevant information describing a single data field. However, generative AI is experimental. The National Renewable Energy Laboratory (NREL) has been collecting metrics on AskGDR and documenting lessons learned during its deployment. This paper will outline the efficacy and impact of AskGDR through analysis of its use, operating costs, number and types of questions asked, and the quality of answers provided.
Original languageAmerican English
Number of pages9
StatePublished - 2025
Event50th Workshop on Geothermal Reservoir Engineering - Palo Alto, California
Duration: 10 Feb 202512 Feb 2025

Conference

Conference50th Workshop on Geothermal Reservoir Engineering
CityPalo Alto, California
Period10/02/2512/02/25

NREL Publication Number

  • NREL/CP-6A20-92858

Keywords

  • accessibility
  • AI
  • artificial intelligence
  • data
  • discoverability
  • DOE
  • ELM
  • enhancements
  • GDR
  • geothermal
  • information
  • innovation
  • large language model
  • LLM
  • machine learning
  • metadata
  • ML
  • open
  • OpenEI
  • repository
  • usability

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