Papers › Improving Medical Multi-modal Contrastive Learning with Expert Annotations

Improving Medical Multi-modal Contrastive Learning with Expert Annotations

15 Mar 2024arXiv:2403.10153archive 2025-07-28

Yogesh Kumar, Pekka Marttinen

We introduce eCLIP, an enhanced version of the CLIP model that integrates expert annotations in the form of radiologist eye-gaze heatmaps. It tackles key challenges in contrastive multi-modal medical imaging analysis, notably data scarcity and the "modality gap" -- a significant disparity between image and text embeddings that diminishes the quality of representations and hampers cross-modal interoperability. eCLIP integrates a heatmap processor and leverages mixup augmentation to efficiently utilize the scarce expert annotations, thus boosting the model's learning effectiveness. eCLIP is designed to be generally applicable to any variant of CLIP without requiring any modifications of the core architecture. Through detailed evaluations across several tasks, including zero-shot inference, linear probing, cross-modal retrieval, and Retrieval Augmented Generation (RAG) of radiology reports using a frozen Large Language Model, eCLIP showcases consistent improvements in embedding quality. The outcomes reveal enhanced alignment and uniformity, affirming eCLIP's capability to harness high-quality annotations for enriched multi-modal analysis in the medical imaging domain.

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ContrastiveLossOutput ykumards/eclip/eclip/model/eclip_module.py official repository ran AGPL-3.0 (copyleft) · pointer only · 2d032fafc65b26df · report
ExpertMixupModule ykumards/eclip/eclip/model/eclip_module.py official repository ran fingerprinted AGPL-3.0 (copyleft) · pointer only · 5e870e622f41b67b · report
_gather_embeddings_and_labels ykumards/eclip/eclip/model/eclip_module.py official repository ran · our draft was wrong AGPL-3.0 (copyleft) · pointer only · b343230215ea2775 · report
get_rank ykumards/eclip/eclip/model/eclip_module.py official repository ran AGPL-3.0 (copyleft) · pointer only · c734e1676e254908 · report
sph_inter ykumards/eclip/eclip/model/eclip_module.py official repository ran · our draft was wrong fingerprinted AGPL-3.0 (copyleft) · pointer only · 76f570ae1d1022e5 · report
BackpropType ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · e98c6d1e9865f73f · report
ClipModule ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · dfcfb3bb6f967137 · report
ContrastiveLossWithTemperature ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · 85bbc08066824740 · report
ExpertClipModule ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · 11142f3ccb491db4 · report
GeodesicClipLoss ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · 5c58c501e6e5cb78 · report
gather_features ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · 4b7fdd1c6930c4d9 · report
gather_tensor ykumards/eclip/eclip/model/eclip_module.py official repository unverified AGPL-3.0 (copyleft) · pointer only · a6c4ca3acfd9ec02 · report

Tasks

Contrastive LearningCross-Modal RetrievalLanguage ModelingLanguage ModellingLarge Language ModelRAGRetrievalRetrieval-augmented Generation

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Methods

CLIPHeatmapMixup

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