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检索条件"机构=Key Laboratory of Symbolic Computation and Knowledge Engineering of the MoE"
897 条 记 录,以下是141-150 订阅
排序:
Skeleton-based Action Recognition with Non-linear Dependency Modeling and Hilbert-Schmidt Independence Criterion
arXiv
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arXiv 2024年
作者: Chen, Haipeng Yang, Yuheng Lyu, Yingda College of Computer Science and Technology Jilin University China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University China Public Computer Education and Research Center Jilin University China
Human skeleton-based action recognition has long been an indispensable aspect of artificial intelligence. Current state-of-the-art methods tend to consider only the dependencies between connected skeletal joints, limi... 详细信息
来源: 评论
TC-GAT: Graph Attention Network for Temporal Causality Discovery
TC-GAT: Graph Attention Network for Temporal Causality Disco...
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International Joint Conference on Neural Networks (IJCNN)
作者: Xiaosong Yuan Ke Chen Wanli Zuo Yijia Zhang College of Computer Science and Technology Jilin University Changchun China Key Laboratory of Symbolic Computation and Knowledge Engineering MOE Changchun China *** Inc Beijing China College of Electronic Countermeasures National University of Defense Technology Hefei China
The present study explores the intricacies of causal relationship extraction, a vital component in the pursuit of causality knowledge. Causality is frequently intertwined with temporal elements, as the progression fro...
来源: 评论
SS-MAF: Semi-Supervised Echocardiographic Segmentation Using Multi-Atlas Fusion
SS-MAF: Semi-Supervised Echocardiographic Segmentation Using...
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Communication, Image and Signal Processing (CCISP), International Conference on
作者: Shuaihua Yang Caixia Zheng College of Information Science and Technology Northeast Normal University Changchun China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University Changchun China
Left ventricle (LV) segmentation in echocardiography is of paramount significance in cardiac function analysis. Recently, semi-supervised segmentation has garnered considerable attention due to its potential mitigatio...
来源: 评论
Troublemaker Learning for Low-Light Image Enhancement
arXiv
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arXiv 2024年
作者: Song, Yinghao Cao, Zhiyuan Xiang, Wanhong Long, Sifan Ge, Hongwei Liang, Yanchun Yang, Bo Wu, Chunguo College of Computer Science and Technology Jilin University Jilin China Key Laboratory of Symbolic Computation and Knowledge Engineering Ministry of Education Jilin University Jilin China YGSOFT INC Dalian University of Technology China
Low-light image enhancement (LLIE) restores the color and brightness of underexposed images. Supervised methods suffer from high costs in collecting low/normal-light image pairs. Unsupervised methods invest substantia... 详细信息
来源: 评论
DeciLS-PBO: an Effective Local Search Method for Pseudo-Boolean Optimization
arXiv
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arXiv 2023年
作者: Jiang, Luyu Ouyang, Dantong Zhang, Qi Zhang, Liming College of Computer Science and Technology Jilin University Changchun130012 China Key Laboratory of Symbolic Computation and Knowledge Engineering Ministry of Education Jilin University Changchun130012 China
Local search is an effective method for solving large-scale combinatorial optimization problems, and it has made remarkable progress in recent years through several subtle mechanisms. In this paper, we found two ways ... 详细信息
来源: 评论
Uncertainty-Aware Global-View Reconstruction for Multi-View Multi-Label Feature Selection  39
Uncertainty-Aware Global-View Reconstruction for Multi-View ...
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39th Annual AAAI Conference on Artificial Intelligence, AAAI 2025
作者: Hao, Pingting Liu, Kunpeng Gao, Wanfu College of Computer Science and Technology Jilin University China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University China Department of Computer Science Portland State University PortlandOR97201 United States
In recent years, multi-view multi-label learning (MVML) has gained popularity due to its close resemblance to real-world scenarios. However, the challenge of selecting informative features to ensure both performance a... 详细信息
来源: 评论
Robust Federated Semi-Supervised Learning for Medical Image Classification via Pseudo-Label Filtering
Robust Federated Semi-Supervised Learning for Medical Image ...
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IEEE International Conference on Bioinformatics and Biomedicine (BIBM)
作者: Ziwei Wang Shuyu Guo Mingzhu Zhu Tian Bai College of Software Jilin University Changchun China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University Changchun China College of Computer Science and Technology Jilin University Changchun China
Federated learning (FL) enables collaborative model training across multiple medical institutions to ensure data security. However, due to the variations in medical imaging equipment and regions at different medical i... 详细信息
来源: 评论
Uncertainty-Aware Global-View Reconstruction for Multi-View Multi-Label Feature Selection
arXiv
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arXiv 2025年
作者: Hao, Pingting Liu, Kunpeng Gao, Wanfu College of Computer Science and Technology Jilin University China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University China Department of Computer Science Portland State University PortlandOR97201 United States
In recent years, multi-view multi-label learning (MVML) has gained popularity due to its close resemblance to real-world scenarios. However, the challenge of selecting informative features to ensure both performance a... 详细信息
来源: 评论
TC-GAT: Graph Attention Network for Temporal Causality Discovery
arXiv
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arXiv 2023年
作者: Yuan, Xiaosong Chen, Ke Zuo, Wanli Zhang, Yijia College of Computer Science and Technology Jilin University Changchun China Key Laboratory of Symbolic Computation and Knowledge Engineering MOE Changchun China *** Inc Beijing China College of Electronic Countermeasures National University of Defense Technology Hefei China
The present study explores the intricacies of causal relationship extraction, a vital component in the pursuit of causality knowledge. Causality is frequently intertwined with temporal elements, as the progression fro... 详细信息
来源: 评论
Reconsidering Feature Structure Information and Latent Space Alignment in Partial Multi-label Feature Selection  39
Reconsidering Feature Structure Information and Latent Space...
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39th Annual AAAI Conference on Artificial Intelligence, AAAI 2025
作者: Pan, Hanlin Liu, Kunpeng Gao, Wanfu College of Computer Science and Technology Jilin University China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University China Department of Computer Science Portland State University PortlandOR97201 United States
The purpose of partial multi-label feature selection is to select the most representative feature subset, where the data comes from partial multi-label datasets that have label ambiguity issues. For label disambiguati... 详细信息
来源: 评论