A Constructive Review Regarding the Significance of 5G Networks for the Internet of Things
暂无分享,去创建一个
[1] Lajos Hanzo,et al. Nonorthogonal Multiple Access for 5G and Beyond , 2017, Proceedings of the IEEE.
[3] Ted H. Szymanski. Security and Privacy for a Green Internet of Things , 2017, IT Professional.
[4] L. Hanzo,et al. Non-Orthogonal Multiple Access for 5G and Beyond , 2018 .
[5] Huaiyu Dai,et al. A Survey on Low Latency Towards 5G: RAN, Core Network and Caching Solutions , 2017, IEEE Communications Surveys & Tutorials.
[6] K. Chakrapani,et al. Test data compression using Lingering Component Reduction technique for system-on-a-chip applications , 2018, Comput. Electr. Eng..
[7] Diego Masotti. A Novel Time-Based Beamforming Strategy for Enhanced Localization Capability , 2017, IEEE Antennas and Wireless Propagation Letters.
[8] Le Yu,et al. An Event-Driven Service Provisioning Mechanism for IoT (Internet of Things) System Interaction , 2016, IEEE Access.
[9] Kazi Mohammed Saidul Huq,et al. Space-Reserved Cooperative Caching in 5G Heterogeneous Networks for Industrial IoT , 2018, IEEE Transactions on Industrial Informatics.
[10] Shahid Mumtaz,et al. A survey of 5G technologies: regulatory, standardization and industrial perspectives , 2017, Digit. Commun. Networks.
[11] Mahmoud Elkhodr,et al. The Internet of Things: New Interoperability, Management and Security Challenges , 2016, ArXiv.
[12] Gerhard Fettweis,et al. 5G-Enabled Tactile Internet , 2016, IEEE Journal on Selected Areas in Communications.
[13] Aleksandr Ometov,et al. 3GPP LTE‐Assisted Wi‐Fi‐Direct: Trial Implementation of Live D2D Technology , 2015 .
[14] Andreas Mitschele-Thiel,et al. Latency Critical IoT Applications in 5G: Perspective on the Design of Radio Interface and Network Architecture , 2017, IEEE Communications Magazine.
[15] Zièd Choukair,et al. A congestion control approach based on dynamic ACB of differentiated M2M services in 5G/HetNet , 2017, 2017 13th International Wireless Communications and Mobile Computing Conference (IWCMC).
[16] Wu He,et al. Internet of Things in Industries: A Survey , 2014, IEEE Transactions on Industrial Informatics.
[17] Xiao Xu,et al. Toward Haptic Communications Over the 5G Tactile Internet , 2018, IEEE Communications Surveys & Tutorials.
[18] Wei Zhang,et al. A Unified Framework for Street-View Panorama Stitching , 2016, Sensors.
[19] Andrea Zanella,et al. Long-Range IoT Technologies: The Dawn of LoRa™ , 2015, FABULOUS.
[20] Ning Zhang,et al. LACS: A Lightweight Label-Based Access Control Scheme in IoT-Based 5G Caching Context , 2017, IEEE Access.
[21] Philip R. Page,et al. Real-time Dynamic Hydraulic Model for Potable Water Loss Reduction , 2016 .
[22] Ian F. Akyildiz,et al. A roadmap for traffic engineering in SDN-OpenFlow networks , 2014, Comput. Networks.
[23] Mohsen Guizani,et al. Extracting and Exploiting Inherent Sparsity for Efficient IoT Support in 5G: Challenges and Potential Solutions , 2017, IEEE Wireless Communications.
[24] Ekram Hossain,et al. Multi-Tier Drone Architecture for 5G/B5G Cellular Networks: Challenges, Trends, and Prospects , 2017, IEEE Communications Magazine.
[25] S. Parkvall,et al. LTE release 12 and beyond [Accepted From Open Call] , 2013, IEEE Communications Magazine.
[26] Carlos Pereira,et al. Towards Efficient Mobile M2M Communications: Survey and Open Challenges , 2014, Sensors.
[27] Yonggang Wen,et al. Cloud radio access network (C-RAN): a primer , 2015, IEEE Network.
[28] Kwok-Yan Lam,et al. Wireless Communication and Security Issues for Cyber–Physical Systems and the Internet-of-Things , 2018, Proceedings of the IEEE.
[29] Alessandra Costanzo,et al. Energizing 5G: Near- and Far-Field Wireless Energy and Data Trantransfer as an Enabling Technology for the 5G IoT , 2017, IEEE Microwave Magazine.
[30] Nei Kato,et al. Device-to-Device Communication in LTE-Advanced Networks: A Survey , 2015, IEEE Communications Surveys & Tutorials.
[31] Yan Grunenberger,et al. Edinburgh Research Explorer Performance Assessment of Open Software Platforms for 5G Prototyping , 2018 .
[32] Mohamed Ibnkahla,et al. Multiband Spectrum Sensing and Resource Allocation for IoT in Cognitive 5G Networks , 2018, IEEE Internet of Things Journal.
[33] Frank van Lingen,et al. The Unavoidable Convergence of NFV, 5G, and Fog: A Model-Driven Approach to Bridge Cloud and Edge , 2017, IEEE Communications Magazine.
[34] Ekram Hossain,et al. Auction Mechanisms for Virtualization in 5G Cellular Networks: Basics, Trends, and Open Challenges , 2018, IEEE Communications Surveys & Tutorials.
[35] Mohsen Guizani,et al. 5G wireless backhaul networks: challenges and research advances , 2014, IEEE Network.
[36] Markku J. Juntti,et al. Terahertz Technologies to Deliver Optical Network Quality of Experience in Wireless Systems Beyond 5G , 2018, IEEE Communications Magazine.
[37] Hsiao-Hwa Chen,et al. M2M Communications in 3GPP LTE/LTE-A Networks: Architectures, Service Requirements, Challenges, and Applications , 2015, IEEE Communications Surveys & Tutorials.
[38] R. Bocu,et al. A homomorphic encryption-based system for securely managing personal health metrics data , 2018, IBM J. Res. Dev..
[39] Rem W. Collier,et al. A Survey of Clustering Techniques in WSNs and Consideration of the Challenges of Applying Such to 5G IoT Scenarios , 2017, IEEE Internet of Things Journal.
[40] Dimitris Schinianakis,et al. Alternative Security Options in the 5G and IoT Era , 2017, IEEE Circuits and Systems Magazine.
[41] Zdenek Becvar,et al. In-Band Device-to-Device Communication in OFDMA Cellular Networks: A Survey and Challenges , 2015, IEEE Communications Surveys & Tutorials.
[42] Xiaochen Xia,et al. A 5G-Enabling Technology: Benefits, Feasibility, and Limitations of In-Band Full-Duplex mMIMO , 2018, IEEE Vehicular Technology Magazine.
[43] Toktam Mahmoodi,et al. Enabling the IoT Machine Age With 5G: Machine-Type Multicast Services for Innovative Real-Time Applications , 2016, IEEE Access.
[44] Shreyas Sen,et al. Self-Optimizing IoT Wireless Video Sensor Node With In-Situ Data Analytics and Context-Driven Energy-Aware Real-Time Adaptation , 2017, IEEE Transactions on Circuits and Systems I: Regular Papers.
[45] Kenneth Stewart,et al. Enabling technologies and architectures for 5G wireless , 2014, 2014 IEEE MTT-S International Microwave Symposium (IMS2014).
[46] Gerhard P. Hancke,et al. A Survey on 5G Networks for the Internet of Things: Communication Technologies and Challenges , 2018, IEEE Access.
[47] Takuro Sato,et al. One Integrated Energy Efficiency Proposal for 5G IoT Communications , 2016, IEEE Internet of Things Journal.
[48] Kai-Kit Wong,et al. Energy Efficiency Optimization With SWIPT in MIMO Broadcast Channels for Internet of Things , 2018, IEEE Internet of Things Journal.
[49] Ian F. Akyildiz,et al. 5G roadmap: 10 key enabling technologies , 2016, Comput. Networks.
[50] Liu Weining,et al. A service-oriented architecture for the transportation Cyber-Physical Systems , 2012, Proceedings of the 31st Chinese Control Conference.
[51] Andrea Zanella,et al. The challenges of M2M massive access in wireless cellular networks , 2015, Digit. Commun. Networks.
[52] Antonella Molinaro,et al. Toward 5G densenets: architectural advances for effective machine-type communications over femtocells , 2015, IEEE Communications Magazine.
[53] Min Chen,et al. Data-Driven Computing and Caching in 5G Networks: Architecture and Delay Analysis , 2018, IEEE Wireless Communications.
[54] Camilla Hollanti,et al. CONDENSE: A Reconfigurable Knowledge Acquisition Architecture for Future 5G IoT , 2016, IEEE Access.
[55] Dusit Niyato,et al. Random access for machine-to-machine communication in LTE-advanced networks: issues and approaches , 2013, IEEE Communications Magazine.
[56] Reza Malekian,et al. Software defined wireless sensor networks application opportunities for efficient network management: A survey , 2017, Comput. Electr. Eng..
[57] Marimuthu Palaniswami,et al. An Information Framework for Creating a Smart City Through Internet of Things , 2014, IEEE Internet of Things Journal.
[58] Gerhard P. Hancke,et al. Software Defined Networking for Improved Wireless Sensor Network Management: A Survey , 2017, Sensors.
[59] Ingrid Moerman,et al. IETF Standardization in the Field of the Internet of Things (IoT): A Survey , 2013, J. Sens. Actuator Networks.
[60] N Linge,et al. The impact of atmospheric pressure on the performance of 60GHz point to point links within 5G networks , 2018 .
[61] Ian F. Akyildiz,et al. SoftAir: A software defined networking architecture for 5G wireless systems , 2015, Comput. Networks.
[62] Khaled Ben Letaief,et al. Smart Channel Sounder for 5G IoT: From Wireless Big Data to Active Communication , 2016, IEEE Access.
[63] Piero Castoldi,et al. TelcoFog: A Unified Flexible Fog and Cloud Computing Architecture for 5G Networks , 2017, IEEE Communications Magazine.
[64] Haijun Zhang,et al. An NDN IoT Content Distribution Model With Network Coding Enhanced Forwarding Strategy for 5G , 2018, IEEE Transactions on Industrial Informatics.
[65] Maria Rita Palattella,et al. Internet of Things in the 5G Era: Enablers, Architecture, and Business Models , 2016, IEEE Journal on Selected Areas in Communications.
[66] Antonello Monti,et al. Cosimulation for Smart Grid Communications , 2014, IEEE Transactions on Industrial Informatics.
[67] Navrati Saxena,et al. Efficient IoT Gateway over 5G Wireless: A New Design with Prototype and Implementation Results , 2017, IEEE Communications Magazine.