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Wenqi Lu

4 accepted papers

2026

CoFiDA-M: Concept-Aware Feature Modulation for Cross-Domain Adaptation with Image-Only Inference

CVPR 2026

Models for AI-based skin cancer screening suffer a severe performance drop when shifting from expert dermoscopic (source) images to consumer-grade clinical (target) photos, hindering real-world deployment. Existing domain adaptation methods often ignore crucial semantic invariants, such as clinical

Cited by 0SourceScholar
2025

SACB-Net: Spatial-awareness Convolutions for Medical Image Registration

CVPR 2025highlight

Deep learning-based image registration methods have shown state-of-the-art performance and rapid inference speeds. Despite these advances, many existing approaches fall short in capturing spatially varying information in non-local regions of feature maps due to the reliance on spatially-shared convo…

2024

Optimizing ADMM and Over-Relaxed ADMM Parameters for Linear Quadratic Problems

AAAI 2024technical

The Alternating Direction Method of Multipliers (ADMM) has gained significant attention across a broad spectrum of machine learning applications. Incorporating the over-relaxation technique shows potential for enhancing the convergence rate of ADMM. However, determining optimal algorithmic parameter…

Cited by 3SourcePDFScholar
2023

Fourier-Net: Fast Image Registration with Band-Limited Deformation

AAAI 2023technical

Unsupervised image registration commonly adopts U-Net style networks to predict dense displacement fields in the full-resolution spatial domain. For high-resolution volumetric image data, this process is however resource-intensive and time-consuming. To tackle this problem, we propose the Fourier-Ne…