Large Language Model-driven Analysis of General Coordinates Network (GCN) Circulars
Vidushi Sharma, Ronit Agarwala, Judith L. Racusin, Leo P. Singer, Tyler Barna, Eric Burns, Michael W. Coughlin, Dakota Dutko, Courey Elliott, Rahul Gupta, Ashish Mahabal, Nikhil Mukund

TL;DR
This paper demonstrates how large language models can automate the extraction, classification, and summarization of astronomical transient reports from NASA's GCN Circulars, significantly improving efficiency and accuracy.
Contribution
It introduces a neural topic modeling and LLM-based pipeline for automated parsing, classification, and redshift extraction from GCN Circulars, a novel approach in astronomical text mining.
Findings
Achieved 97.2% accuracy in redshift extraction.
Successfully classified Circulars by observation wave bands and messengers.
Retrieved 96.8% of relevant Circulars using neural search-enhanced RAG.
Abstract
The General Coordinates Network (GCN) is NASA's time-domain and multimessenger alert system. GCN distributes two data products: automated "Notices" and human-generated "Circulars" that report the observations of high-energy and multimessenger astronomical transients. The flexible and nonstructured format of GCN Circulars, comprising more than 40,500 Circulars accumulated over three decades, makes it challenging to manually extract observational information, such as redshift or observed wave bands. In this work, we employ large language models (LLMs) to facilitate the automated parsing of transient reports. We develop a neural topic modeling pipeline with open-source tools for the automatic clustering and summarization of astrophysical topics in the Circulars archive. Using neural topic modeling and contrastive fine-tuning, we classify Circulars based on their observation wave bands and…
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Taxonomy
TopicsGamma-ray bursts and supernovae · Seismology and Earthquake Studies · Astronomy and Astrophysical Research
