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检索条件"机构=Systems and Information Engineering Data Science"
1235 条 记 录,以下是941-950 订阅
排序:
EXPLAINABLE ARTIFICIAL INTELLIGENCE (XAI) 2.0: A MANIFESTO OF OPEN CHALLENGES AND INTERDISCIPLINARY RESEARCH DIRECTIONS
arXiv
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arXiv 2023年
作者: Longo, Luca Brcic, Mario Cabitza, Federico Choi, Jaesik Confalonieri, Roberto Ser, Javier Del Guidotti, Riccardo Hayashi, Yoichi Herrera, Francisco Holzinger, Andreas Jiang, Richard Khosravi, Hassan Lecue, Freddy Malgieri, Gianclaudio Páez, Andrés Samek, Wojciech Schneider, Johannes Speith, Timo Stumpf, Simone The Artificial Intelligence and Cognitive Load Research Lab Technological University Dublin Ireland University of Zagreb Faculty of Electrical Engineering and Computing Croatia University of Milano-Bicocca Milan Italy IRCCS Ospedale Galeazzi Sant’Ambrogio Milan Italy Kim Jaechul Graduate School of AI Korea Advanced Institute of Science & Technology Korea Republic of INEEJI Corporation Korea Republic of Department of Mathematics University of Padua Italy Derio Spain Bilbao Spain University of Pisa Pisa Italy Department of Computer Science Meiji University Tokyo Japan Department of Computer Science and Artificial Intelligence DaSCI Andalusian Institute in Data Science & Computational Intelligence University of Granada Granada Spain Human-Centered AI Lab University of Natural Resources and Life Sciences Vienna Austria School of Computing and Communications Lancaster University United Kingdom The University of Queensland Brisbane Australia Sophia Antipolis France eLaw Center for Law and Digital Technologies Leiden University Netherlands Department of Philosophy Universidad de los Andes Bogotá Colombia Center for Research & Formation in Artificial Intelligence Universidad de los Andes Bogotá Colombia Technical University of Berlin Berlin Germany Fraunhofer Heinrich Hertz Institute Berlin Germany Berlin Germany Department of Information Systems and Computer Science University of Liechtenstein Liechtenstein Liechtenstein Department of Philosophy University of Bayreuth Bayreuth Germany Center for Perspicuous Computing Saarland University Saarbrücken Germany School of Computing Science University of Glasgow United Kingdom
As systems based on opaque Artificial Intelligence (AI) continue to flourish in diverse real-world applications, understanding these black box models has become paramount. In response, Explainable AI (XAI) has emerged... 详细信息
来源: 评论
Hyperspectral Image Classification with Spatial Consistence Using Fully Convolutional Spatial Propagation Network
arXiv
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arXiv 2020年
作者: Jiang, Yenan Li, Ying Zou, Shanrong Zhang, Haokui Bai, Yunpeng School of Computer Science National Engineering Laboratory for Integrated Aero-Space-Ground-Ocean Big Data Application Technology Shaanxi Provincial Key Laboratory of Speech and Image Information Processing Northwestern Polytechnical University Xi’an710129 China School of Computer Science University of Adelaide AdelaideSA5005 Australia National Key Laboratory of Science and Technology on Space Microwave Xi’an710000 China School of Computing and Information Systems University of Melbourne MelbourneVIC3010 Australia
In recent years, deep convolutional neural networks (CNNs) have demonstrated impressive ability to represent hyperspectral images (HSIs) and achieved encouraging results in HSI classification. However, the existing CN... 详细信息
来源: 评论
The Classification of Abnormal Hand Movement to Aid in Autism Detection: Machine Learning Study
arXiv
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arXiv 2021年
作者: Lakkapragada, Anish Kline, Aaron Mutlu, Onur Cezmi Paskov, Kelley Chrisman, Brianna Stockham, Nathaniel Washington, Peter Wall, Dennis Paul Division of Systems Medicine Department of Pediatrics Stanford University StanfordCA United States Department of Electrical Engineering Stanford University StanfordCA United States Department of Biomedical Data Science Stanford University StanfordCA United States Department of Bioengineering Stanford University StanfordCA United States Department of Neuroscience Stanford University StanfordCA United States Information and Computer Sciences University of Hawai'i at Manoa 2500 Campus Rd HonoluluHI96822 United States
Background: A formal autism diagnosis can be an inefficient and lengthy process. Families may wait several months or longer before receiving a diagnosis for their child despite evidence that earlier intervention leads... 详细信息
来源: 评论
A Cellular Ant Colony Algorithm for Path Planning Using Bayesian Posterior Probability
A Cellular Ant Colony Algorithm for Path Planning Using Baye...
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2019 2nd International Conference on Informatics, Control and Automation (ICA 2019)
作者: Xiu-fen WANG Sheng-yi YANG School of data science and Information Engineering Guizhou Minzu University Key Laboratory of Pattern Recognition and Intelligent Systems of Guizhou Province Guizhou Minzu University
In order to solve the problem of slow convergence rate in traditional ant colony algorithm for UAV path planning,a new cellular ant colony algorithm is ***,we construct a sector prediction area in grid environment ***... 详细信息
来源: 评论
AN EMPIRICAL FEASIBILITY STUDY OF SOCIETAL RISK CLASSIFICATION TOWARD BBS POSTS
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Journal of systems science and systems engineering 2018年 第6期27卷 709-726页
作者: Jindong Chen Xiaoji Zhou Xijin Tang School of Economics and Management Beifing Information Science &Technology University Beifing 100192 China China Academy of Aerospace Systems Science and Engineering Beijing 100048 China Academy of Mathematics and Systems Science Chinese Academy of Sciences Beijing 100190 China Beijing Key Lab of Green Development Decision Based on Big Data Beijing 100192 China University of Chinese Academy of Sciences Beijing 100049 China
Societal risk classification is the fundamental issue for online societal risk monitoring. To show the challenge and feasibility of societal risk classification toward BBS posts, an empirical analysis is implemented i... 详细信息
来源: 评论
DPM: A novel training method for physics-informed neural networks in extrapolation
arXiv
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arXiv 2020年
作者: Kim, Jungeun Lee, Kookjin Lee, Dongeun Jin, Sheo Yon Park, Noseong Department of AI Yonsei University Korea Republic of Extreme Scale Data Science & Analytics Department Sandia National Laboratory United States Department of Computer Science and Information Systems Texas A&M University at Commerce United States IT Engineering Department Sookmyung Women’s University Korea Republic of Department of AI & CS Yonsei University Korea Republic of
We present a method for learning dynamics of complex physical processes described by time-dependent nonlinear partial differential equations (PDEs). Our particular interest lies in extrapolating solutions in time beyo... 详细信息
来源: 评论
Using machine learning to predict near-term mortality in cirrhosis patients hospitalized at the University of Virginia health system
Using machine learning to predict near-term mortality in cir...
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2018 systems and information engineering Design Symposium, SIEDS 2018
作者: Harrison, Elizabeth Chang, Myron Hao, Yi Flower, Abigail School of Medicine and Data Science Institute University of Virginia United States Data Science Institute University of Virginia United States Department of Systems and Information Engineering University of Virginia United States
This study aimed to predict near-term mortality in patients hospitalized with cirrhosis at the University of Virginia Health System using two approaches - logistic regression and a long short-term memory neural networ... 详细信息
来源: 评论
Privacy-preserving medical treatment system through nondeterministic finite automata
arXiv
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arXiv 2020年
作者: Yang, Yang Deng, Robert H. Liu, Ximeng Wu, Yongdong Weng, Jian Zheng, Xianghan Rong, Chunming School of Information Systems Singapore Management University Singapore College of Mathematics and Computer Science Fuzhou University Fujian China State Key Laboratory of Integrated Services Networks Xidian University Guangdong Provincial Key Laboratory of Data Security and Privacy Protection Guangzhou China Fujian Provincial Key Laboratory of Information Processing and Intelligent Control Minjiang University Fuzhou China School of Information Systems Singapore Management University Singapore Singapore Department of Computer Science Jinan University Guangdong China College of Mathematics and Computer Science Fuzhou University Fujian China Department of Electronic Engineering and Computer Science University of Stavanger Norway MingByte Technology Qingdao China
In this paper, we propose a privacy-preserving medical treatment system using nondeterministic finite automata (NFA), hereafter referred to as P-Med, designed for the remote medical environment. P-Med makes use of the... 详细信息
来源: 评论
$\mathsf{NCF}$NCF: A Neural Context Fusion Approach to Raw Mobility Annotation
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IEEE Transactions on Mobile Computing 2020年 第1期21卷 226-238页
作者: Renjun Hu Jingbo Zhou Xinjiang Lu Hengshu Zhu Shuai Ma Hui Xiong SKLSDE Lab Beijing Advanced Innovation Center for Big Data and Brain Computing Beihang University Beijing China Business Intelligence Lab Baidu Research National Engineering Laboratory of Deep Learning Technology and Application Beijing China Talent Intelligence Center Baidu Inc. Beijing China Management Science and Information Systems Department Rutgers Business School Rutgers University Newark NJ USA
Understanding human mobility patterns at the point-of-interest (POI) scale plays an important role in enhancing business intelligence in mobile environments. While large efforts have been made in this direction, most ... 详细信息
来源: 评论
Dense residual network: Enhancing global dense feature flow for character recognition
arXiv
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arXiv 2020年
作者: Zhang, Zhao Tang, Zemin Wang, Yang Zhang, Zheng Zhan, Choujun Zha, Zhengjun Wang, Meng School of Computer Science and Information Engineering Hefei University of Technology Hefei230009 China Key Laboratory of Knowledge Engineering with Big Data Ministry of Education Intelligent Interconnected Systems Laboratory of Anhui Province Hefei University of Technology Hefei230009 China School of Computer Science and Technology Soochow University Suzhou215006 China Shenzhen China School of Computer South China Normal University Guangzhou510631 China Deparmtment of Computer Science and Technology University of Science and Technology of China Hefei China
Deep Convolutional Neural Networks (CNNs), such as Dense Convolutional Network (DenseNet), have achieved great success for image representation learning by capturing deep hierarchical features. However, most existing ... 详细信息
来源: 评论