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Chun-Nan Hsu

3 accepted papers

2023

MedEval: A Multi-Level, Multi-Task, and Multi-Domain Medical Benchmark for Language Model Evaluation

EMNLP 2023long main

Curated datasets for healthcare are often limited due to the need of human annotations from experts. In this paper, we present MedEval, a multi-level, multi-task, and multi-domain medical benchmark to facilitate the development of language models for healthcare. MedEval is comprehensive and consists…

Cited by 0SourceScholar
2023

“Nothing Abnormal”: Disambiguating Medical Reports via Contrastive Knowledge Infusion

AAAI 2023technical

Sharing medical reports is essential for patient-centered care. A recent line of work has focused on automatically generating reports with NLP methods. However, different audiences have different purposes when writing/reading medical reports – for example, healthcare professionals care more about pa…

2021

Weakly Supervised Contrastive Learning for Chest X-Ray Report Generation

EMNLP 2021finding

Radiology report generation aims at generating descriptive text from radiology images automatically, which may present an opportunity to improve radiology reporting and interpretation. A typical setting consists of training encoder-decoder models on image-report pairs with a cross entropy loss, whic…

Cited by 87SourcePDFScholar