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20242026
most citedGLFC: Unified Global-Local Feature and Contrast Learning with Mamba-Enhanced UNet for Synthetic CT Generation from CBCT

2 citations · 2 across the 10 of their papers we have counts for

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6 papers · 1 filter

cs.CV2026

A3-TTA: Adaptive Anchor Alignment Test-Time Adaptation for Image Segmentation

Jianghao Wu, Xiangde Luo, Yubo Zhou +3

Test-Time Adaptation (TTA) offers a practical solution for deploying image segmentation models under domain shift without accessing source data or retraining. Among existing TTA st…

cs.CV2025

DINOv3-Guided Cross Fusion Framework for Semantic-aware CT generation from MRI and CBCT

Xianhao Zhou, Jianghao Wu, Ku Zhao +5

Generating synthetic CT images from CBCT or MRI has a potential for efficient radiation dose planning and adaptive radiotherapy. However, existing CNN-based models lack global sema…

cs.CV2025

MetaSSL: A General Heterogeneous Loss for Semi-Supervised Medical Image Segmentation

Weiren Zhao, Lanfeng Zhong, Xin Liao +4

Semi-Supervised Learning (SSL) is important for reducing the annotation cost for medical image segmentation models. State-of-the-art SSL methods such as Mean Teacher, FixMatch and…

cs.CV2025

MedCAL-Bench: A Comprehensive Benchmark on Cold-Start Active Learning with Foundation Models for Medical Image Analysis

Ning Zhu, Xiaochuan Ma, Shaoting Zhang +1

Cold-Start Active Learning (CSAL) aims to select informative samples for annotation without prior knowledge, which is important for improving annotation efficiency and model perfor…

cs.CV2025

SRPL-SFDA: SAM-Guided Reliable Pseudo-Labels for Source-Free Domain Adaptation in Medical Image Segmentation

Xinya Liu, Jianghao Wu, Tao Lu +2

Domain Adaptation (DA) is crucial for robust deployment of medical image segmentation models when applied to new clinical centers with significant domain shifts. Source-Free Domain…

cs.CV2025

Fairness Analysis of CLIP-Based Foundation Models for X-Ray Image Classification

Xiangyu Sun, Xiaoguang Zou, Yuanquan Wu +2

X-ray imaging is pivotal in medical diagnostics, offering non-invasive insights into a range of health conditions. Recently, vision-language models, such as the Contrastive Languag…