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most citedAgent Aggregator with Mask Denoise Mechanism for Histopathology Whole Slide Image Analysis

16 citations · 21 across the 24 of their papers we have counts for

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Showing 2025 · cs.CVShow all

10 papers · 2 filters

cs.CV2025

HookMIL: Revisiting Context Modeling in Multiple Instance Learning for Computational Pathology

Xitong Ling, Minxi Ouyang, Xiaoxiao Li +7

Multiple Instance Learning (MIL) has enabled weakly supervised analysis of whole-slide images (WSIs) in computational pathology. However, traditional MIL approaches often lose cruc…

cs.CV2025

StainNet: Scaling Self-Supervised Foundation Models on Immunohistochemistry and Special Stains for Computational Pathology

Jiawen Li, Jiali Hu, Xitong Ling +6

Foundation models trained with self-supervised learning (SSL) on large-scale histological images have significantly accelerated the development of computational pathology. These mo…

cs.CV2025

HyperST: Hierarchical Hyperbolic Learning for Spatial Transcriptomics Prediction

Chen Zhang, Yilu An, Ying Chen +7

Spatial Transcriptomics (ST) merges the benefits of pathology images and gene expression, linking molecular profiles with tissue structure to analyze spot-level function comprehens…

cs.CV2025

From Generic to Specialized: A Subspecialty Diagnostic System Powered by Self-Supervised Learning for Cervical Histopathology

Yizhi Wang, Li Chen, Qiang Huang +24

Cervical cancer remains a major malignancy, necessitating extensive and complex histopathological assessments and comprehensive support tools. Although deep learning shows promise,…

cs.CV2025

SAC-MIL: Spatial-Aware Correlated Multiple Instance Learning for Histopathology Whole Slide Image Classification

Yu Bai, Zitong Yu, Haowen Tian +11

We propose Spatial-Aware Correlated Multiple Instance Learning (SAC-MIL) for performing WSI classification. SAC-MIL consists of a positional encoding module to encode position info…

cs.CV2025

Multimodal Prototype Alignment for Semi-supervised Pathology Image Segmentation

Mingxi Fu, Fanglei Fu, Xitong Ling +4

Pathological image segmentation faces numerous challenges, particularly due to ambiguous semantic boundaries and the high cost of pixel-level annotations. Although recent semi-supe…