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Networks

Networks的相关文献在1989年到2022年内共计1142篇,主要集中在自动化技术、计算机技术、无线电电子学、电信技术、肿瘤学 等领域,其中期刊论文1127篇、专利文献15篇;相关期刊257种,包括电信技术、通信世界、计算机与网络等; Networks的相关文献由1998位作者贡献,包括Wei Hu、Abderezak Touzene、Benjamin Valyou等。

Networks—发文量

期刊论文>

论文:1127 占比:98.69%

专利文献>

论文:15 占比:1.31%

总计:1142篇

Networks—发文趋势图

Networks

-研究学者

  • Wei Hu
  • Abderezak Touzene
  • Benjamin Valyou
  • Mahmoud Zaki Iskandarani
  • Nathan Aston
  • William Deitrick
  • 杜娟
  • A. El Ouafi
  • A. P. Abidoye
  • A. T. Burrell
  • 期刊论文
  • 专利文献

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    • Armindo Frias; João Cabral; Álvaro Costa
    • 摘要: Tourism is one of the activities with high benefits on the development and for many regions,enabling the integration of local populations and economies.In our natural laboratory,the Azores Island of São Miguel,an important share of tourists identifies adventure,leisure and touch with nature,as the main reasons for the visit.The use of footpaths can contribute to the satisfaction of tourists,promoting tourism and the region’s development during their movements on the tourism network,tourists appreciate different types of attractions and need the support of a set of facilities.Tourist decisions are not always done in a rational way,emotions add even more complexity to the human decision process.The movement of tourists within a destination depends on factors related to tourist characteristics,like the time budgets,preferences or destination knowledge,and destination features related to attractions characteristics or accessibility level.The existence of a mathematical model that incorporates the main factors that explain the movement of independent tourists within a destination,in a dynamic way,will make possible the creation of an adaptable software tool.This tool will meet the specific needs of tourists,allowing the use of the network in an optimal way by the different tourist profiles,and the needs of regional government and business,allowing better decisions and the offer of relevant tourism products.This article is based on the authors’previous research and identifies the relevance of tourism for regional development,finds the main tourists’mobility criteria on the study territory,using as main support for the footpath network,recognises the necessary modelling process and develops the foundation for the building of the mathematical model that explains the movement of tourists within the destination,making possible a future adaptable software tool.
    • 摘要: With the emergence of Internet of Things,modern control systems have to deal with the big data from the ubiquitous information sensing mobile devices,cameras,microphones,radio-frequency identification devices,wireless sensor networks,etc.,which is often beyond the capacity of traditional control technologies.To deal with this issue,the rapidly developing cloud computing may provide a perfect platform for big data storage and processing,controller design,and performance optimization.Thereby,with the extension and application of the basic theory and method of cloud computing defined by software in the field of automatic control,cloud control systems have recently attracted much attention from both researchers and engineers.
    • Muhammad KHAN
    • 摘要: Due to the recent rapid development in the 5 G technology,the usage of sensor networks especially wireless sensor networks(WSNs)has boosted advances in the augmented reality(AR),supporting decision making in AR environments.Such decision-making needs support and consideration of artificial intelligence(AI)techniques capable of adapting to changes in AR environments for creating systems that evolve autonomously over time.Currently,it is important to apply new information fusion techniques that allow for the processing of information at low and high levels to improve the accuracy of such systems.
    • Zhenyu Xiao; Qihui Wu; Jiajia Liu; Ning Zhang; Tao Sun
    • 摘要: Ubiquitous coverage is one of the most important goals for mobile communication networks.To achieve this,integration of space,air,and ground networks is highly demanded,which expects to become the one of the enabling technologies for 6G networks.
    • 摘要: 派拓网络推出Prisma Cloud供应链安全功能Palo Alto Networks(派拓网络)推出Prisma Cloud供应链安全功能,为企业提供软件供应链潜在漏洞或错误配置的完整视图,助其快速追踪问题源头并修复漏洞。Prisma Cloud供应链安全功能提供了一个全栈、全生命周期的方法来保护构成和交付云原生应用的互连组件。
    • Fahd N.Al-Wesabi; Imran Khan; Saleem Latteef Mohammed; Huda Farooq Jameel; Mohammad Alamgeer; Ali M.Al-Sharafi; Byung Seo Kim
    • 摘要: With the rapid development of the next-generation mobile network,the number of terminal devices and applications is growing explosively.Therefore,how to obtain a higher data rate,wider network coverage and higher resource utilization in the limited spectrum resources has become the common research goal of scholars.Device-to-Device(D2D)communication technology and other frontier communication technologies have emerged.Device-to-Device communication technology is the technology that devices in proximity can communicate directly in cellular networks.It has become one of the key technologies of the fifth-generation mobile communications system(5G).D2D communication technology which is introduced into cellular networks can effectively improve spectrum utilization,enhance network coverage,reduce transmission delay and improve system throughput,but it would also bring complicated and various interferences due to reusing cellular resources at the same time.So resource management is one of the most challenging and importing issues to give full play to the advantages of D2D communication.Optimal resource allocation is an important factor that needs to be addressed in D2D communication.Therefore,this paper proposes an optimization method based on the game-matching concept.The main idea is to model the optimization problem of the quality-of-experience based on user fairness and solve it through game-matching theory.Simulation results show that the proposed algorithm effectively improved the resource allocation and utilization as compared with existing algorithms.
    • Haifeng Zheng; Lin Gao; Zhiyong Chen; Liang Xiao
    • 摘要: With the rapid development of smart terminals and infrastructures,as well as diversified applications(e.g.,autonomous driving,virtual and augmented reality,space-air-ground integrated networks)with colorful demands,current networks(e.g.,4G and 5G networks)may not be well suited to the requirements of novel applications and services.Recently,efforts from both the industry and academia have been made on the research into 6G networks,artificial intelligence(AI)will play a pivotal role in the design and optimization of 6G networks.
    • Olga Ussatova; Aidana Zhumabekova; Yenlik Begimbayeva; Eric T.Matson; Nikita Ussatov
    • 摘要: The fast development of Internet technologies ignited the growthof techniques for information security that protect data, networks, systems,and applications from various threats. There are many types of threats. Thededicated denial of service attack (DDoS) is one of the most serious andwidespread attacks on Internet resources. This attack is intended to paralyzethe victim’s system and cause the service to fail. This work is devoted tothe classification of DDoS attacks in the special network environment calledSoftware-Defined Networking (SDN) using machine learning algorithms. Theanalyzed dataset included instances of two classes: benign and malicious.As the dataset contained twenty-two features, the feature selection techniques were required for dimensionality reduction. In these experiments, theInformation gain, the Chi-square, and the F-test were applied to decreasethe number of features to ten. The classes were also not completely balanced, so undersampling, oversampling, and synthetic minority oversampling(SMOTE) techniques were used to balance classes equally. The previousresearch works observed the classification of DDoS attacks applying variousfeature selection techniques and one or more machine learning algorithms.Still, they did not pay much attention to classifying the combinations offeature selection and balancing methods with different machine learningalgorithms. This work is devoted to the classification of datasets with eightmachine learning algorithms: naïve Bayes, logistic regression, support vectormachine, k-nearest neighbors, decision tree, random forest, XGBoost, andCatBoost. In the experimental results, the Information gain and F-test featureselection methods achieved better performance with all eight ML algorithmsthan with the Chi-square technique. Furthermore, the accuracy values of theoversampled and SMOTE datasets were higher than that of the undersampledand imbalanced datasets. Among machine learning algorithms, the accuracyof support vector machine, logistic regression, and naïve Bayes fluctuatesbetween 0.59 and 0.75, while decision tree, random forest, XGBoost, and CatBoost allowed achieving values around 0.99 and 1.00 with all featureselection and class balancing techniques among all the algorithms.
    • Jun Zhang; Toshio Fukuda; Defu Lin; Florian Holzapfel
    • 摘要: Recent advances in networked cooperative autonomous sys-tems offer the potential to significantly improve system quality for a wide range of applications.Progress in embedded processor,sensor,communication,and networking technology in the last few decades has accelerated interest in networked cooperative autonomous systems,multirobot systems,and distributed sensor networks for applications such as manufacturing,logistics,pro-cess monitoring,enhanced situational awareness,plant safety,inspection,security,and rescue operations.
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