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检索条件"机构=1. Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education"
800 条 记 录,以下是91-100 订阅
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AHMSA-Net: Adaptive Hierarchical Multi-Scale Attention Network for Micro-Expression Recognition
arXiv
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arXiv 2025年
作者: Zhang, Lijun Zhang, Yifan Tang, Weicheng Sun, Xinzhi Wang, Xiaomeng Li, Zhanshan College of Computer Science and Technology Jilin University Changchun Jilin130012 China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University Changchun Jilin130012 China
Micro-expression recognition (MER) presents a significant challenge due to the transient and subtle nature of the motion changes involved. In recent years, deep learning methods based on attention mechanisms have made... 详细信息
来源: 评论
Verifying Diagnosability of Discrete Event System with Logical Formula
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Chinese Journal of Electronics 2020年 第2期29卷 304-311页
作者: GENG Xuena OUYANG Dantong HAN Cheng College of Computer Science and Technology Changchun University of Science and Technology Key Laboratory of Symbolic Computation and Knowledge Engineering for Ministry of Education Jilin University
Diagnosability is an important property in the field of fault diagnosis. In this paper, a novel approach based on logical formula is proposed to verify diagnosability of Discrete event systems(DESs). CNFFSM is defined... 详细信息
来源: 评论
Nucleus Detection Based on Adversarial Domain Adaptation with Cross-Domain Consistency
Nucleus Detection Based on Adversarial Domain Adaptation wit...
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Medical Artificial Intelligence (MedAI), IEEE International Conference on
作者: Shuyu Guo Lan Huang Lang Li Tian Bai College of Computer Science and Technology (of Jilin University) Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education (of Jilin University) Changchun China
Automatic cell/nucleus detection is a prerequisite for various quantitative analyses on microscopy image. However, previous deep learning methods require enough annotated microscopy images for better performance, whic...
来源: 评论
Computing PUR of Zero-Dimensional Ideals of Breadth at Most One
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Journal of Systems Science & Complexity 2021年 第6期34卷 2396-2409页
作者: PAN Jian SHANG Baoxin LI Zhe ZHANG Shugong School of Mathematics Key Laboratory of Symbolic Computation and Knowledge Engineering(Ministry of Education)Jilin UniversityChangchun 130012China College of Science Northeast Electric Power UniversityJilin 132012China School of Science Changchun University of Science and TechnologyChangchun 130022China
In this paper,for a zero-dimensional polynomial ideal I,the authors prove that k[x_(1.,x_(2),…,x_(n)]/I is cyclic if and only if the breadth of I is 0 or ***,the authors present a new algorithm to compute polynomial ... 详细信息
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Enhancing Unsupervised Graph Few-shot Learning via Set Functions and Optimal Transport
arXiv
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arXiv 2025年
作者: Liu, Yonghao Giunchiglia, Fausto Li, Ximing Huang, Lan Feng, Xiaoyue Guan, Renchu College of Computer Science and Technology Jilin University Changchun China Department of Information Engineering and Computer Science University of Trento Trento Italy Key Laboratory of Symbolic Computation and Knowledge Engineering The Ministry of Education China
Graph few-shot learning has garnered significant attention for its ability to rapidly adapt to downstream tasks with limited labeled data, sparking considerable interest among researchers. Recent advancements in graph... 详细信息
来源: 评论
Dual-level Mixup for Graph Few-shot Learning with Fewer Tasks
arXiv
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arXiv 2025年
作者: Liu, Yonghao Li, Mengyu Giunchiglia, Fausto Huang, Lan Li, Ximing Feng, Xiaoyue Guan, Renchu College of Computer Science and Technology Jilin University Changchun China Department of Information Engineering and Computer Science University of Trento Trento Italy Key Laboratory of Symbolic Computation and Knowledge Engineering The Ministry of Education China
Graph neural networks have been demonstrated as a powerful paradigm for effectively learning graph-structured data on the web and mining content from it. Current leading graph models require a large number of labeled ... 详细信息
来源: 评论
In-Context Decision Transformer: Reinforcement Learning via Hierarchical Chain-of-Thought
arXiv
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arXiv 2024年
作者: Huang, Sili Hu, Jifeng Chen, Hechang Sun, Lichao Yang, Bo School of Artificial Intelligence Jilin University China Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University China Lehigh University BethlehemPA United States
In-context learning is a promising approach for offline reinforcement learning (RL) to handle online tasks, which can be achieved by providing task prompts. Recent works demonstrated that in-context RL could emerge wi... 详细信息
来源: 评论
Dual-level Mixup for Graph Few-shot Learning with Fewer Tasks  25
Dual-level Mixup for Graph Few-shot Learning with Fewer Task...
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34th ACM Web Conference, WWW 2025
作者: Liu, Yonghao Li, Mengyu Giunchiglia, Fausto Huang, Lan Li, Ximing Feng, Xiaoyue Guan, Renchu College of Computer Science and Technology Jilin University Changchun China Department of Information Engineering and Computer Science University of Trento Trento Italy Key Laboratory of Symbolic Computation and Knowledge Engineering of the Ministry of Education China
Graph neural networks have been demonstrated as a powerful paradigm for effectively learning graph-structured data on the web and mining content from it. Current leading graph models require a large number of labeled ... 详细信息
来源: 评论
Information Entropy Invariance: Enhancing Length Extrapolation in Attention Mechanisms
arXiv
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arXiv 2025年
作者: Li, Kewei Kong, Yanwen Xu, Yiping Su, Jianlin Huang, Lan Zhang, Ruochi Zhou, Fengfeng College of Computer Science and Technology Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education Jilin University Jilin Changchun130012 China Moonshot AI Ltd. Beijing100086 China
Since the emergence of research on improving the length extrapolation capabilities of large models in 2021. some studies have made modifications to the scaling factor in the scaled dot-product attention mechanism as p... 详细信息
来源: 评论
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