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Multi-Modal Foundation Models for Computational Pathology: A Survey
Dong Li1, Guihong Wan2, Xintao Wu3
1Department of Computer Science, Baylor University.
Summary
Multi-modal foundation models integrate diverse data for computational pathology (CPath). This survey reviews 34 models and 30 datasets, categorizing approaches and outlining future directions for AI in pathology.
Area of Science:
- Computational pathology
- Artificial intelligence in medicine
- Digital pathology
Background:
- Foundation models are advancing computational pathology (CPath) with scalable and generalizable histopathological image analysis.
- Recent progress emphasizes multi-modal foundation models integrating visual data with textual reports, domain knowledge, and molecular profiles.
Purpose of the Study:
- To provide a comprehensive review of multi-modal foundation models in CPath.
- To focus on models utilizing hematoxylin and eosin (H&E) stained whole slide images (WSIs) and tile-level data.
- To categorize existing models, datasets, tasks, and strategies, identifying future research avenues.
Main Methods:
- Categorization of 34 state-of-the-art multi-modal foundation models into vision-language, vision-knowledge graph, and vision-gene expression paradigms.
- Further classification of vision-language models into non-LLM-based and LLM-based approaches.
- Analysis and grouping of 30 pathology-focused multi-modal datasets into image-text, instruction, and image-other modality pairs.
Main Results:
- Identified three primary multi-modal foundation model paradigms: vision-language, vision-knowledge graph, and vision-gene expression.
- Cataloged 34 distinct multi-modal foundation models and 30 relevant datasets.
- Developed a taxonomy of downstream tasks and analyzed training/evaluation strategies.
Conclusions:
- Multi-modal foundation models represent a significant advancement in computational pathology.
- This survey offers a structured overview and resource for researchers in AI and pathology.
- Key challenges and future directions are highlighted to guide further development in the field.
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