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HeadCT-ONE: Enabling Granular and Controllable Automated Evaluation of Head CT Radiology Report Generation

  • Juliàn N. Acosta
  • , Xiaoman Zhang
  • , Siddhant Dogra
  • , Hong Yu Zhou
  • , Seyedmehdi Payabvash
  • , Guido J. Falcone
  • , Eric K. Oermann
  • , Pranav Rajpurkar*
  • *Corresponding author for this work
  • Harvard University
  • New York University
  • Columbia University
  • Yale University

Research output: Contribution to journalConference articlepeer-review

Abstract

We present Head CT Ontology Normalized Evaluation (HeadCT-ONE), a metric for evaluating head CT report generation through ontology-normalized entity and relation extraction. HeadCT-ONE enhances current information extraction derived metrics (suchas RadGraph F1) by implementing entity normalization through domain-specific ontologies, addressing radiological language variability. HeadCT-ONE compares normalized entities and relations, allowing for controllable weighting of different entity types or specificentities. Through experiments on head CTreports from three health systems, we show that HeadCT-ONE’s normalization and weighting approach improves the capture of semantically equivalent reports, better distinguishes between normal and abnormal reports, and aligns with radiologists’ assessment of clinically significant errors, while offering flexibility to prioritize specific aspects of report content. Our results demonstrate how HeadCT-ONE enables more flexible, controllable, and granular automate devaluation of head CT reports.

Original languageEnglish
JournalProceedings of Machine Learning Research
Volume287
StatePublished - 2025
Externally publishedYes
Event6th Conference on Health, Inference, and Learning, CHIL 2025 - Berkeley, United States
Duration: 25 Jun 202527 Jun 2025

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