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Masks and Manuscripts: Advancing Medical Pre-training with End-to-End Masking and Narrative Structuring

Authors :
Gowda, Shreyank N
Clifton, David A.
Publication Year :
2024

Abstract

Contemporary medical contrastive learning faces challenges from inconsistent semantics and sample pair morphology, leading to dispersed and converging semantic shifts. The variability in text reports, due to multiple authors, complicates semantic consistency. To tackle these issues, we propose a two-step approach. Initially, text reports are converted into a standardized triplet format, laying the groundwork for our novel concept of ``observations'' and ``verdicts''. This approach refines the {Entity, Position, Exist} triplet into binary questions, guiding towards a clear ``verdict''. We also innovate in visual pre-training with a Meijering-based masking, focusing on features representative of medical images' local context. By integrating this with our text conversion method, our model advances cross-modal representation in a multimodal contrastive learning framework, setting new benchmarks in medical image analysis.<br />Comment: Accepted in MICCAI-24

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2407.16264
Document Type :
Working Paper