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Prostate-TriMod: A Multi-Scale Tri-Modal Histology Dataset Integrating Morphology, Immune Patterns, and Clinical Outcomes

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Zenodo2026-06-23 更新2026-06-05 收录
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Accurate prognostic assessment of prostate cancer (PCa) requires an integrated understanding of tumor morphology and the immune microenvironment. We present Prostate-TriMod, a novel tri-modal histology dataset designed to integrate high-resolution morphology with spatial immune patterns and clinical outcomes. This dataset, generated from the Cell DIVE multiplexed imaging platform, consists of three synchronized modalities: (1) multiscale virtual H&E (vH&E) tiles (224px, 256px, 512px, and 2040px), (2) spatial tissue maps identifying cancerous/non-cancerous epithelial, stroma and immune cell populations (via TOPAZ and CAT models), and (3) text captions generated from single-cell data and patterns. The dataset includes comprehensive clinical annotations, including Grade Groups and biochemical recurrence (BCR) status. By providing high-fidelity alignment between morphology, spatial tissue maps, and textual descriptions, this resource enables the development of advanced multimodal AI models including vision-language models (VLMs) and deep learning frameworks for precision oncology.

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Zenodo
创建时间:
2026-02-13
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