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20232026
most citedKnowledge Transfer with Simulated Inter-Image Erasing for Weakly Supervised Semantic Segmentation

1 citations · 1 across the 8 of their papers we have counts for

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cs.CV2026

PEARL: Geometry Aligns Semantics for Training-Free Open-Vocabulary Semantic Segmentation

Gensheng Pei, Xiruo Jiang, Xinhao Cai +3

Training-free open-vocabulary semantic segmentation (OVSS) promises rapid adaptation to new label sets without retraining. Yet, many methods rely on heavy post-processing or handle…

cs.CV2026

Taming SAM3 in the Wild: A Concept Bank for Open-Vocabulary Segmentation

Gensheng Pei, Xiruo Jiang, Yazhou Yao +3

The recent introduction of \texttt{SAM3} has revolutionized Open-Vocabulary Segmentation (OVS) through \textit{promptable concept segmentation}, which grounds pixel predictions in…

cs.CV2024

Anti-Collapse Loss for Deep Metric Learning Based on Coding Rate Metric

Xiruo Jiang, Yazhou Yao, Xili Dai +3

Deep metric learning (DML) aims to learn a discriminative high-dimensional embedding space for downstream tasks like classification, clustering, and retrieval. Prior literature pre…

cs.CV20241 cited

Knowledge Transfer with Simulated Inter-Image Erasing for Weakly Supervised Semantic Segmentation

Tao Chen, XiRuo Jiang, Gensheng Pei +3

Though adversarial erasing has prevailed in weakly supervised semantic segmentation to help activate integral object regions, existing approaches still suffer from the dilemma of u…

cs.CV2024

A Light-weight Transformer-based Self-supervised Matching Network for Heterogeneous Images

Wang Zhang, Tingting Li, Yuntian Zhang +3

Matching visible and near-infrared (NIR) images remains a significant challenge in remote sensing image fusion. The nonlinear radiometric differences between heterogeneous remote s…

cs.CV2024

VideoMAC: Video Masked Autoencoders Meet ConvNets

Gensheng Pei, Tao Chen, Xiruo Jiang +3

Recently, the advancement of self-supervised learning techniques, like masked autoencoders (MAE), has greatly influenced visual representation learning for images and videos. Never…