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Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 80 of 80 outbound references and 1 inbound Pith citation observation for arXiv:2506.22567.
A citation records a reference. It does not transfer a finding from one paper to another.
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80 of 80 outbound references displayed
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Observation 96ba57ab-1d5d-45b6-81fe-1387b901a03e · outbound
Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Clip and complementary methods
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Learning transferable visual models from natural language supervision
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Improved baselines with visual instruction tuning
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Blip: Bootstrapping language-image pre-training for unified vision-language understanding and generation
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Multi-class texture analysis in colorectal cancer histology
Reference 71
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Predicting survival from colorectal cancer histology slides using deep learning: A retrospective multicenter study
Reference 72
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Deep learning for the detection of anatomical tissue structures and neoplasms of the skin on scanned histopathological tissue sections
Reference 73
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Reference 74
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Reference 75
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Kvasir: A multi-class image dataset for computer aided gastrointestinal disease detection
Reference 76
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Reference 77
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation The ham10000 dataset, a large collection of multi-source dermatoscopic images of common pigmented skin lesions
Reference 78
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Reference 79
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Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation Decoupled Weight Decay Regularization
Reference 80
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Capabilities of GPT-5 on Multimodal Medical Reasoning Unifying Biomedical Vision-Language Expertise: Towards a Generalist Foundation Model via Multi-CLIP Knowledge Distillation
Reference 8
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