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ZePT: Zero-Shot Pan-Tumor Segmentation via Query-Disentangling and Self-Prompting

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The long-tailed distribution problem in medical image analysis reflects a high prevalence of common conditions and a low prevalence of rare ones, which poses a significant challenge in developing a unified model capable of identifying rare or novel tumor categories not encountered during training. In this paper, we propose a new zero-shot pan-tumor segmentation framework (ZePT) based on query-disentangling and self-prompting to segment unseen tumor categories beyond the training set. ZePT disentangles the object queries into two subsets and trains them in two stages. Initially, it learns a set of fundamental queries for organ segmentation through an object-aware feature grouping strategy, which gathers organ-level visual features. Subsequently, it refines the other set of advanced queries that focus on the auto-generated visual prompts for unseen tumor segmentation. Moreover, we introduce query-knowledge alignment at the feature level to enhance each query's discriminative representation and generalizability. Extensive experiments on various tumor segmentation tasks demonstrate the performance superiority of ZePT, which surpasses the previous counterparts and evidence the promising ability for zero-shot tumor segmentation in real-world settings.

Yankai Jiang, Zhongzhen Huang, Rongzhao Zhang, Xiaofan Zhang, Shaoting Zhang• 2023

Related benchmarks

TaskDatasetResultRank
Organ SegmentationWORD
Overall DICE84.26
20
SegmentationAbdomenCT-1K
Dice Score91.34
12
SegmentationMSD Spleen
Dice Score94.03
12
Tumor SegmentationKiTS Kidney Tumor 23
DSC48.75
12
Medical Image SegmentationMSD Decathlon (val)
Task 3 Liver Organ DSC97.22
10
Tumor Detection and SegmentationMSD Pancreas Tumor (test)
AUROC0.8681
9
Tumor Detection and SegmentationMSD Lung Tumor (test)
AUROC77.84
9
Tumor Detection and SegmentationMSD Hepatic Vessel Tumor (test)
AUROC91.57
9
Tumor Detection and SegmentationMSD Colon Tumor (test)
AUROC0.8236
9
Tumor Detection and SegmentationReal-World Colon Tumor (test)
AUROC84.35
9
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