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End-to-End Cell Detection via Instance-aware Graph Modeling

arXiv · AI, language, vision and robotics · article · Sep 14, 2026 · UTC

Accurate cell detection and classification are crucial for pathological analysis, directly affecting diagnostic accuracy and treatment planning. To capture complex cellular interactions beyond visual appearance within the tumor microenvironment, several approaches have employed graph neural networks to model spatial and relational patterns among cell nuclei, yielding promising results. However, these methods typically adopt a two-stage paradigm of visual extraction followed by relational modeling, which necessitates separate tuning for each stage, thereby increasing pipeline complexity and hin

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First collected: 2026-09-20T11:41:07.830Z. This is not the publication date.