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检索条件"机构=Beijing Advanced.Innovation Center for Big Data and Brain Computing"
489 条 记 录,以下是51-60 订阅
排序:
Proximity-induced magnetic order in topological insulator on ferromagnetic semiconductor
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Science China(Information Sciences) 2023年 第12期66卷 267-274页
作者: Hangtian WANG Koichi MURATA Weiran XIE Jing LI Jie ZHANG Kang L.WANG Weisheng ZHAO Tianxiao NIE School of Integrated Circuit Science and Engineering and Advanced Innovation Center for Big Data and Brain Computing Beihang University Beihang-Goertek Joint Microelectronics Institute Qingdao Research InstituteBeihang University Department of Electrical Engineering University of California
Introducing magnetic order into topological insulator(TI) to break the time-reversal symmetry can yield numerous fascinating physical phenomena,which brings new hope for the emerging spintronic *** proximity effect ... 详细信息
来源: 评论
Prompt-based Unifying Inference Attack on Graph Neural Networks
arXiv
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arXiv 2024年
作者: Wei, Yuecen Fu, Xingcheng Liu, Lingyun Sun, Qingyun Peng, Hao Hu, Chunming School of Software Beihang University Beijing China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China Key Lab of Education Blockchain and Intelligent Technology Ministry of Education Guangxi Normal University China
Graph neural networks (GNNs) provide important prospective insights in applications such as social behavior analysis and financial risk analysis based on their powerful learning capabilities on graph data. Nevertheles... 详细信息
来源: 评论
DOANet: Point Cloud Registration with Deep Overlap Attention
DOANet: Point Cloud Registration with Deep Overlap Attention
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2021 China Automation Congress, CAC 2021
作者: Guan, Haining Gao, Qing Zhang, Baochang School of Automation Science and Electrical Engineering Beihang University Beijing100191 China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing100191 China
Pairwise point cloud registration is a fundamental task in 3D computer vision and various approaches have been proposed to handle this problem in recent years. Despite the fast evolution of registration algorithms, li... 详细信息
来源: 评论
Synthesis of Decoherence-Free Modes in Linear Quantum Passive Systems via Robust Pole Placement
Synthesis of Decoherence-Free Modes in Linear Quantum Passiv...
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2024 IEEE International Conference on Systems, Man, and Cybernetics, SMC 2024
作者: Miao, Zibo Pan, Yu Gao, Qing School of Mechanical Engineering and Automation Adaptive Robotics Harbin Institute of Technology Guangdong Key Laboratory of Intelligent Morphing Mechanisms Shenzhen518055 China The Institute of Cyber-Systems and Control College of Control Science and Engineering Zhejiang University State Key Laboratory of Industrial Control Technology Hangzhou310027 China The School of Automation Science and Electrical Engineering Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing100191 China
In this paper we extend our previous research on coherent observer-based pole placement approach to study the synthesis of robust decoherence-free (DF) modes for linear quantum passive systems, which is aimed at prese... 详细信息
来源: 评论
Model learning:a survey of foundations,tools and applications
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Frontiers of Computer Science 2021年 第5期15卷 71-92页
作者: Shahbaz ALI Hailong SUN Yongwang ZHAO Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing 100191China SKLSDE School of Computer Science and EngineeringBeihang UniversityBeijing 100191China School of Software Beihang UniversityBeijing 100191China School of Cyber Science and Technology College of Computer ScienceZhejiang UniversityHangzhou 310058China
Software systems are present all around us and playing their vital roles in our daily *** correct functioning of these systems is of prime *** addition to classical testing techniques,formal techniques like model chec... 详细信息
来源: 评论
Learning from Noisy Crowd Labels with Logics
arXiv
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arXiv 2023年
作者: Chen, Zhijun Sun, Hailong He, Haoqian Chen, Pengpeng SKLSDE Lab Beihang University Beijing China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China China’s Aviation System Engineering Research Institute Beijing China
This paper explores the integration of symbolic logic knowledge into deep neural networks for learning from noisy crowd labels. We introduce Logic-guided Learning from Noisy Crowd Labels (Logic-LNCL), an EM-alike iter... 详细信息
来源: 评论
Learning from Noisy Crowd Labels with Logics
Learning from Noisy Crowd Labels with Logics
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International Conference on data Engineering
作者: Zhijun Chen Hailong Sun Haoqian He Pengpeng Chen SKLSDE Lab Beihang University Beijing China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China China’s Aviation System Engineering Research Institute Beijing China
This paper explores the integration of symbolic logic knowledge into deep neural networks for learning from noisy crowd labels. We introduce Logic-guided Learning from Noisy Crowd Labels (Logic-LNCL), an EM-alike iter...
来源: 评论
An Improvement of the Rational Representation for High-Dimensional Systems
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Journal of Systems Science & Complexity 2021年 第6期34卷 2410-2427页
作者: XIAO Fanghui LU Dong MA Xiaodong WANG Dingkang KLMM Academy of Mathematics and Systems ScienceChinese Academy of SciencesBeijing 100190China School of Mathematical Sciences University of Chinese Academy of SciencesBeijing 100049China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang UniversityBeijing 100191China School of Mathematical Sciences Beihang UniversityBeijing 100191China College of Science China Agricultural UniversityBeijing 100083China
Based on the rational univariate representation of zero-dimensional polynomial systems,Tan and Zhang proposed the rational representation theory for solving a high-dimensional polynomial system,which uses so-called ra... 详细信息
来源: 评论
AutoST: towards the universal modeling of spatio-temporal sequences  22
AutoST: towards the universal modeling of spatio-temporal se...
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Proceedings of the 36th International Conference on Neural Information Processing Systems
作者: Jianxin Li Shuai Zhang Hui Xiong Haoyi Zhou Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China Hong Kong University of Science and Technology (Guangzhou) Guangzhou HKUST Fok Ying Tung Research Institute Guangzhou China Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China
The analysis of spatio-temporal sequences plays an important role in many real-world applications, demanding a high model capacity to capture the interdependence among spatial and temporal dimensions. Previous studies...
来源: 评论
Multi-Modal Knowledge Graph Transformer Framework for Multi-Modal Entity Alignment
arXiv
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arXiv 2023年
作者: Li, Qian Ji, Cheng Guo, Shu Liang, Zhaoji Wang, Lihong Li, Jianxin School of Computer Science and Engineering Beihang University Beijing China Beijing Advanced Innovation Center for Big Data and Brain Computing Beijing China National Computer Network Emergency Response Technical Team Coordination Center of China China
Multi-Modal Entity Alignment (MMEA) is a critical task that aims to identify equivalent entity pairs across multi-modal knowledge graphs (MMKGs). However, this task faces challenges due to the presence of different ty... 详细信息
来源: 评论