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Wanting Zhou

3 accepted papers

2026

CoV-Align: Efficient Fine-grained Cross-Modal Alignment with Cohesive Visual Semantics Priority

CVPR 2026

Cross-modal alignment aims to learn semantically consistent latent representations across diverse modalities. Prevailing methods rely on a text-guided aggregation paradigm to achieve fine-grained alignment, while they suffer from redundant patch-word correlations and high computational costs. To add

Cited by 0SourceScholar
2024

Contrmix: Progressive Mixed Contrastive Learning for Semi-Supervised Medical Image Segmentation

ICASSP 2024accepted

While medical image segmentation has achieved impressive progress, it usually being constrained by labor-intensive and costly pixel-wise annotations. The existing semi-supervised learning methods ignore the inherent imbalance and high similarity of different categories in medical images. To address…

Cited by 0SourceScholar
2023

Lightvessel: Exploring Lightweight Coronary Artery Vessel Segmentation Via Similarity Knowledge Distillation

ICASSP 2023accepted

In recent years, deep convolution neural networks (DCNNs) have achieved great prospects in coronary artery vessel segmentation. However, it is difficult to deploy complicated models in clinical scenarios since high-performance approaches have excessive parameters and high computation costs. To tackl…

Cited by 0SourceScholar