NuSegDG: Integration of Heterogeneous Space and Gaussian Kernel for Domain-Generalized Nuclei Segmentation
Zhenye Lou, Qing Xu, Zekun Jiang, Xiangjian He, Zhen Chen, Yi Wang, Chenxin Li, Maggie M. He, Wenting Duan

TL;DR
NuSegDG is a novel framework that enhances nuclei segmentation across diverse domains by integrating heterogeneous space adaptation and Gaussian kernel prompts, reducing manual effort and improving generalization.
Contribution
It introduces a Heterogeneous Space Adapter, Gaussian-Kernel Prompt Encoder, and Two-Stage Mask Decoder to improve domain-generalized nuclei segmentation with minimal manual prompts.
Findings
Achieves state-of-the-art domain generalization in nuclei segmentation.
Demonstrates superior performance over existing methods.
Reduces manual prompt requirements significantly.
Abstract
Domain-generalized nuclei segmentation refers to the generalizability of models to unseen domains based on knowledge learned from source domains and is challenged by various image conditions, cell types, and stain strategies. Recently, the Segment Anything Model (SAM) has made great success in universal image segmentation by interactive prompt modes (e.g., point and box). Despite its strengths, the original SAM presents limited adaptation to medical images. Moreover, SAM requires providing manual bounding box prompts for each object to produce satisfactory segmentation masks, so it is laborious in nuclei segmentation scenarios. To address these limitations, we propose a domain-generalizable framework for nuclei image segmentation, abbreviated to NuSegDG. Specifically, we first devise a Heterogeneous Space Adapter (HS-Adapter) to learn multi-dimensional feature representations of…
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Taxonomy
TopicsHydrocarbon exploration and reservoir analysis
MethodsAdapter · Segment Anything Model
