cs.AI updates on arXiv.org 07月18日 12:13
Unified Medical Image Segmentation with State Space Modeling Snake
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本文提出Mamba Snake,一种基于状态空间建模的深度蛇框架,用于解决医学图像分割的多尺度结构异质性问题,通过蛇特定视觉状态空间模块和能量图形状先验,显著提升分割效果。

arXiv:2507.12760v1 Announce Type: cross Abstract: Unified Medical Image Segmentation (UMIS) is critical for comprehensive anatomical assessment but faces challenges due to multi-scale structural heterogeneity. Conventional pixel-based approaches, lacking object-level anatomical insight and inter-organ relational modeling, struggle with morphological complexity and feature conflicts, limiting their efficacy in UMIS. We propose Mamba Snake, a novel deep snake framework enhanced by state space modeling for UMIS. Mamba Snake frames multi-contour evolution as a hierarchical state space atlas, effectively modeling macroscopic inter-organ topological relationships and microscopic contour refinements. We introduce a snake-specific vision state space module, the Mamba Evolution Block (MEB), which leverages effective spatiotemporal information aggregation for adaptive refinement of complex morphologies. Energy map shape priors further ensure robust long-range contour evolution in heterogeneous data. Additionally, a dual-classification synergy mechanism is incorporated to concurrently optimize detection and segmentation, mitigating under-segmentation of microstructures in UMIS. Extensive evaluations across five clinical datasets reveal Mamba Snake's superior performance, with an average Dice improvement of 3\% over state-of-the-art methods.

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医学图像分割 深度学习 状态空间建模 Mamba Snake 分割效果提升
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