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20242026
most citedLLM-Enhanced Multimodal Fusion for Cross-Domain Sequential Recommendation

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cs.CV2026

Context Patch Fusion With Class Token Enhancement for Weakly Supervised Semantic Segmentation

Yiyang Fu, Hui Li, Wangyu Wu

Weakly Supervised Semantic Segmentation (WSSS), which relies only on image-level labels, has attracted significant attention for its cost-effectiveness and scalability. Existing me…

cs.CV2025

SynthSeg-Agents: Multi-Agent Synthetic Data Generation for Zero-Shot Weakly Supervised Semantic Segmentation

Wangyu Wu, Zhenhong Chen, Xiaowei Huang +2

Weakly Supervised Semantic Segmentation (WSSS) with image level labels aims to produce pixel level predictions without requiring dense annotations. While recent approaches have lev…

cs.CV2025

Tag-Enriched Multi-Attention with Large Language Models for Cross-Domain Sequential Recommendation

Wangyu Wu, Xuhang Chen, Zhenhong Chen +5

Cross-Domain Sequential Recommendation (CDSR) plays a crucial role in modern consumer electronics and e-commerce platforms, where users interact with diverse services such as books…

cs.CV2025

Contrastive Prompt Clustering for Weakly Supervised Semantic Segmentation

Wangyu Wu, Zhenhong Chen, Xiaowen Ma +6

Weakly Supervised Semantic Segmentation (WSSS) with image-level labels has gained attention for its cost-effectiveness. Most existing methods emphasize inter-class separation, ofte…

cs.CV2025

Cognitive-Inspired Hierarchical Attention Fusion With Visual and Textual for Cross-Domain Sequential Recommendation

Wangyu Wu, Zhenhong Chen, Siqi Song +4

Cross-Domain Sequential Recommendation (CDSR) predicts user behavior by leveraging historical interactions across multiple domains, focusing on modeling cross-domain preferences th…

cs.CV2025

Image Augmentation Agent for Weakly Supervised Semantic Segmentation

Wangyu Wu, Xianglin Qiu, Siqi Song +4

Weakly-supervised semantic segmentation (WSSS) has achieved remarkable progress using only image-level labels. However, most existing WSSS methods focus on designing new network st…