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20232025
most citedUncovering Prototypical Knowledge for Weakly Open-Vocabulary Semantic Segmentation

5 citations · 5 across the 5 of their papers we have counts for

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6 papers · 1 filter

cs.CV2025

Decouple before Align: Visual Disentanglement Enhances Prompt Tuning

Fei Zhang, Tianfei Zhou, Jiangchao Yao +3

Prompt tuning (PT), as an emerging resource-efficient fine-tuning paradigm, has showcased remarkable effectiveness in improving the task-specific transferability of vision-language…

cs.CV2025

ConText: Driving In-context Learning for Text Removal and Segmentation

Fei Zhang, Pei Zhang, Baosong Yang +3

This paper presents the first study on adapting the visual in-context learning (V-ICL) paradigm to optical character recognition tasks, specifically focusing on text removal and se…

cs.CV2025

G4Seg: Generation for Inexact Segmentation Refinement with Diffusion Models

Tianjiao Zhang, Fei Zhang, Jiangchao Yao +2

This paper considers the problem of utilizing a large-scale text-to-image diffusion model to tackle the challenging Inexact Segmentation (IS) task. Unlike traditional approaches th…

cs.CV2024

Audio-Visual Segmentation via Unlabeled Frame Exploitation

Jinxiang Liu, Yikun Liu, Fei Zhang +3

Audio-visual segmentation (AVS) aims to segment the sounding objects in video frames. Although great progress has been witnessed, we experimentally reveal that current methods reac…

cs.CV20235 cited

Uncovering Prototypical Knowledge for Weakly Open-Vocabulary Semantic Segmentation

Fei Zhang, Tianfei Zhou, Boyang Li +6

This paper studies the problem of weakly open-vocabulary semantic segmentation (WOVSS), which learns to segment objects of arbitrary classes using mere image-text pairs. Existing w…

cs.CV2023

AttrSeg: Open-Vocabulary Semantic Segmentation via Attribute Decomposition-Aggregation

Chaofan Ma, Yuhuan Yang, Chen Ju +3

Open-vocabulary semantic segmentation is a challenging task that requires segmenting novel object categories at inference time. Recent studies have explored vision-language pre-tra…