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检索条件"机构=CAS Key Laboratory of Network Data Science and Technology"
1645 条 记 录,以下是1291-1300 订阅
排序:
Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum key Distribution over 509 km
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Physical Review Letters 2020年 第7期124卷 070501-070501页
作者: Jiu-Peng Chen Chi Zhang Yang Liu Cong Jiang Weijun Zhang Xiao-Long Hu Jian-Yu Guan Zong-Wen Yu Hai Xu Jin Lin Ming-Jun Li Hao Chen Hao Li Lixing You Zhen Wang Xiang-Bin Wang Qiang Zhang Jian-Wei Pan Shanghai Branch National Laboratory for Physical Sciences at Microscale and Department of Modern Physics University of Science and Technology of China Shanghai 201315 People’s Republic of China Shanghai Branch CAS Center for Excellence and Synergetic Innovation Center in Quantum Information and Quantum Physics University of Science and Technology of China Shanghai 201315 People’s Republic of China Jinan Institute of Quantum Technology Jinan Shandong 250101 People’s Republic of China State Key Laboratory of Low Dimensional Quantum Physics Department of Physics Tsinghua University Beijing 100084 People’s Republic of China State Key Laboratory of Functional Materials for Informatics Shanghai Institute of Microsystem and Information Technology Chinese Academy of Sciences Shanghai 200050 People’s Republic of China Data Communication Science and Technology Research Institute Beijing 100191 People’s Republic of China Corning Incorporated Corning New York 14831 USA
Twin-field (TF) quantum key distribution (QKD) promises high key rates over long distances to beat the rate-distance limit. Here, applying the sending-or-not-sending TF QKD protocol, we experimentally demonstrate a se... 详细信息
来源: 评论
An Adaptive Model Update Object Tracking Algorithm based on DenseNet Features
An Adaptive Model Update Object Tracking Algorithm based on ...
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International Conference on networking and network Applications (NaNA)
作者: Sugang Ma Lei Zhang Lei Pu Xiaobao Yang Zhiqiang Hou Shaanxi Key Laboratory of Network Data Analysis and Intelligent Processing Xi'an University of Posts and Telecommunications Xi'an shaanxi China School of Computer Science and Technology Xi'an University of Posts and Telecommunications Xi'an shaanxi China School of Information and Navigation Air Force Engineering University Xi'an shaanxi China
In order to further improve the ability to deal with complex scenes, a visual tracking algorithm based on DenseNet features and model adaptive updating is proposed. Aiming to improve the feature representation ability... 详细信息
来源: 评论
变革生命科学研究范式,构建全息人体数字模型(英文)
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Engineering 2023年 第8期 14-17页
作者: Bin Cong Xin-An Liu Shiming Zhang Zhiyu Ni Liping Wang Hebei Key Laboratory of Forensic Medicine College of Forensic MedicineHebei Medical University College of Integrated Traditional Chinese and Western Medicine Hebei Medical University Research Unit of Digestive Tract Microecosystem Pharmacology and Toxicology Chinese Academy of Medical Sciences CAS Key Laboratory of Brain Connectome and Manipulation Shenzhen-Hong Kong Institute of Brain ScienceShenzhen Institute of Advanced TechnologyChinese Academy of Sciences Institute of Data Intelligence Bigmath (Shenzhen) Technology Co.Ltd. School of Basic Medical Sciences Hebei University Guangdong Provincial Key Laboratory of Brain Connectome and Behavior the Brain Cognition and Brain Disease InstituteShenzhen Institute of Advanced TechnologyChinese Academy of Sciences
1. The need to develop a holographic digital mannequin Life processes, including high intelligence, self-organization, and homeostasis, are characterized by the biological organism in the form of self-renewal, self-re...
来源: 评论
A skeleton pattern representation method for anomaly detection in wireless sensor networks  21
A skeleton pattern representation method for anomaly detecti...
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21st IEEE International Conference on High Performance Computing and Communications, 17th IEEE International Conference on Smart City and 5th IEEE International Conference on data science and Systems, HPCC/SmartCity/DSS 2019
作者: Chen, Yanping Yang, Ping Gao, Cong Wang, Zhongmin Yu, Zhong School of Computer Science and Technology Xi'an University of Posts and Telecommunications Xi'an710121 China Shaanxi Key Laboratory of Network Data Analysis and Intelligent Processing Xi'an University of Posts and Telecommunications Xi'an China School of Communications and Information Engineering Xi'an University of Posts and Telecommunications Xi'an710121 China
Anomaly detection of time series in wireless sensor networks has gained significant attention. Researchers employ representation techniques to reduce the dimensionality of time series. The Piecewise Aggregate Pattern ... 详细信息
来源: 评论
SetRank: Learning a permutation-invariant ranking model for information retrieval
arXiv
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arXiv 2019年
作者: Pang, Liang Xu, Jun Ai, Qingyao Lan, Yanyan Cheng, Xueqi Wen, Jirong CAS Key Lab of Network Data Science and Technology Institute of Computing Technology Chinese Academy of Sciences Beijing China Renmin University of China Beijing China University of Utah United States
In learning-to-rank for information retrieval, a ranking model is automatically learned from the data and then utilized to rank the sets of retrieved documents. Therefore, an ideal ranking model would be a mapping fro... 详细信息
来源: 评论
Cake cutting on graphs: A discrete and bounded proportional protocol
arXiv
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arXiv 2019年
作者: Bei, Xiaohui Sun, Xiaoming Wu, Hao Zhang, Jialin Zhang, Zhijie Zi, Wei School of Physical and Mathematical Sciences Nanyang Technological University CAS Key Lab of Network Data Science and Technology Institute of Computing Technology Chinese Academy of Sciences University of Chinese Academy of Sciences
The classical cake cutting problem studies how to find fair allocations of a heterogeneous and divisible resource among multiple agents. Two of the most commonly studied fairness concepts in cake cutting are proportio... 详细信息
来源: 评论
Erratum: Prototype of readout electronics for GAEA gamma spectrometer of Back-n facility at CSNS
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Journal of Instrumentation 2022年 第8期17卷 E08002-E08002页
作者: L. Xie P. Cao T. Yu Z. Jiang Q. An J. Li C. Li X. Wu Z. Wang H. Bai J. Bai J. Bao Q. Chen Y. Chen Z. Chen Z. Cui A. Fan R. Fan C. Feng F. Feng K. Gao M. Gu C. Han Z. Han G. He Y. He Y. Hong Y. Hu H. Huang W. Jia H. Jiang W. Jiang Z. Jin L. Kang B. Li G. Li Q. Li X. Li Y. Li J. Liu R. Liu S. Liu G. Luan C. Ning B. Qi J. Ren Z. Ren X. Ruan Z. Song K. Sun Z. Tan J. Tang S. Tang L. Wang P. Wang Z. Wen Y. Yang H. Yi Y. Yu G. Zhang L. Zhang M. Zhang Q. Zhang X. Zhang Y. Zhang Z. Zhang M. Zhao L. Zhou Z. Zhou K. Zhu State Key Laboratory of Particle Detection and Electronics University of Science and Technology of China Hefei China Department of Modern Physics University of Science and Technology of China Hefei China Key Laboratory of Nuclear Data China Institute of Atomic Energy Beijing China State Key Laboratory of Nuclear Physics and Technology School of Physics Peking University Beijing China Institute of Nuclear Physics and Chemistry China Academy of Engineering Physics Mianyang China Institute of High Energy Physics Chinese Academy of Sciences (CAS) Beijing China Spallation Neutron Source Science Center Dongguan China USTC archaeometry lab University of Science and Technology of China Hefei China State Key Laboratory of Particle Detection and Electronics Institute of High Energy Physics Chinese Academy of Sciences Beijing China Northwest Institute of Nuclear Technology Xi'an China University of Chinese Academy of Sciences Beijing China
来源: 评论
On the Connectivity of Highly Dynamic Wireless Sensor networks in Smart Factory
On the Connectivity of Highly Dynamic Wireless Sensor Networ...
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International Conference on networking and network Applications (NaNA)
作者: Cong Gao Zhongmin Wang Yanping Chen School of Computer Science and Technology Shaanxi Key Laboratory of Network Data Analysis and Intelligent Processing Xi'an University of Posts and Telecommunications Xi'an China
With the development of smart manufacturing in Industry 4.0, large amount of heterogeneous data are generated from multiple sources. Various data processing techniques can be applied to these data for the purpose of e... 详细信息
来源: 评论
Intelligent Forecasting for Solar Flares Using Magnetograms from SDO/SHARP, SDO/HMI, and ASO-S/FMG
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The Astrophysical Journal Supplement Series 2025年 第2期278卷 63-63页
作者: Xuebao Li Hongwei Ye Yanfang Zheng Ting Li Jiaben Lin Shunhuang Zhang Pengchao Yan Yongshang Lv Noraisyah Mohamed Shah Xuefeng Li Xiaotian Wang Yingbo Liu Rui Wang Jinfang Wei Changtian Xiang Honglei Jin School of Computer Jiangsu University of Science and Technology Zhenjiang 212100 People’s Republic of China zyf062856@*** State Key Laboratory of Space Weather Chinese Academy of Sciences Beijing 100190 People’s Republic of China CAS Key Laboratory of Solar Activity National Astronomical Observations Chinese Academy of Sciences Beijing 100101 People’s Republic of China School of Astronomy and Space Science University of Chinese Academy of Sciences Beijing 100049 People’s Republic of China National Space Science Center Chinese Academy of Sciences Beijing 100190 People’s Republic of China Department of Electrical Engineering Faculty of Engineering University of Malaya Malaysia Big Data Research Institute of Yunnan Economy and Society Yunnan University of Finance and Economics Kunming 650221 People’s Republic of China
In this study, we build multiple data sets based on magnetograms provided by the Solar Dynamics Observatory (SDO)/SHARP, SDO/Helioseismic and Magnetic Imager, and the Full-disk vector Magnetograph (FMG) on board the A...
来源: 评论
Erratum: Real-time digital trigger system for GTAF-II at CSNS Back-n white neutron source
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Journal of Instrumentation 2022年 第8期17卷 E08006-E08006页
作者: L. Xie P. Cao T. Yu X. Tang Z. Jiang Q. An Xi. Huang C. Li J. Li M. Gu Q. Zhang G. Luan X. Ruan G. He J. Ren J. Bai J. Bao Y. Bao H. Chen Q. Chen Y. Chen Z. Chen Z. Cui R. Fan C. Feng K. Gao X. Gao C. Han Z. Han Y. He Y. Hong Y. Hu H. Huang H. Jiang W. Jiang H. Jing L. Kang B. Li Q. Li X. Li Y. Li J. Liu R. Liu S. Liu X. Liu Z. Long C. Ning M. Niu B. Qi Z. Ren Z. Song K. Sun Z. Sun Z. Tan J. Tang B. Tian L. Wang P. Wang Z. Wang Z. Wen X. Wu X. Yang Y. Yang H. Yi L. Yu Y. Yu G. Zhang L. Zhang X. Zhang Y. Zhang Z. Zhang L. Zhou Z. Zhou K. Zhu State Key Laboratory of Particle Detection and Electronics University of Science and Technology of China Hefei China Department of Modern Physics University of Science and Technology of China Hefei China Institute of High Energy Physics Chinese Academy of Sciences (CAS) Beijing China State Key Laboratory of Particle Detection and Electronics Institute of High Energy Physics Chinese Academy of Sciences Beijing China Key Laboratory of Nuclear Data China Institute of Atomic Energy Beijing China Institute of Nuclear Physics and Chemistry China Academy of Engineering Physics Mianyang China Spallation Neutron Source Science Center Dongguan China State Key Laboratory of Nuclear Physics and Technology School of Physics Peking University Beijing China Northwest Institute of Nuclear Technology Xi'an China University of Chinese Academy of Sciences Beijing China
来源: 评论