URLLC for 5G and Beyond: Requirements, Enabling Incumbent Technologies and Network Intelligence
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Ali Kashif Bashir | Yousaf Bin Zikria | Sahil Garg | Rashid Ali | Hyung Seok Kim | H. Kim | S. Garg | A. Bashir | R. Ali | Y. B. Zikria
[1] Yi Liu,et al. Dominant Data Set Selection Algorithms for Electricity Consumption Time-Series Data Analysis Based on Affine Transformation , 2020, IEEE Internet of Things Journal.
[2] Lars Wolf,et al. Multi-Connectivity as an Enabler for Reliable Low Latency Communications—An Overview , 2020, IEEE Communications Surveys & Tutorials.
[3] Samir Ranjan Das,et al. Addressing deafness and hidden terminal problem in directional antenna based wireless multi-hop networks , 2010, Wirel. Networks.
[4] Philippe Ciblat,et al. Throughput Maximization and IR-HARQ Optimization for URLLC Traffic in 5G Systems , 2019, ICC 2019 - 2019 IEEE International Conference on Communications (ICC).
[5] Lu Zhao,et al. Uplink Nonorthogonal Multiple Access Technologies Toward 5G: A Survey , 2018, Wirel. Commun. Mob. Comput..
[6] Junaid Ansari,et al. Ultra-reliable and low-latency communication for wireless factory automation: From LTE to 5G , 2016, 2016 IEEE 21st International Conference on Emerging Technologies and Factory Automation (ETFA).
[7] Joachim Sachs,et al. Adaptive 5G Low-Latency Communication for Tactile InternEt Services , 2019, Proceedings of the IEEE.
[8] Suresh Kalyanasundaram,et al. A Novel HARQ Pooling Scheme for Improved Multi-Connectivity in 5G Cloud RAN , 2016, 2016 IEEE Globecom Workshops (GC Wkshps).
[9] Preben E. Mogensen,et al. Enabling Early HARQ Feedback in 5G Networks , 2016, 2016 IEEE 83rd Vehicular Technology Conference (VTC Spring).
[10] Moshiur Rahman,et al. Rate Allocation and Adaptation for Incremental Redundancy Truncated HARQ , 2013, IEEE Transactions on Communications.
[11] Carlo Fischione,et al. Low-Latency Networking: Where Latency Lurks and How to Tame It , 2018, Proceedings of the IEEE.
[12] Mehdi Bennis,et al. Toward Low-Latency and Ultra-Reliable Virtual Reality , 2018, IEEE Network.
[13] Tuomas Tirronen,et al. 3GPP Release 15 Early Data Transmission , 2018, IEEE Communications Standards Magazine.
[14] Xiaoli Chu,et al. Coexistence of Wi-Fi and heterogeneous small cell networks sharing unlicensed spectrum , 2015, IEEE Communications Magazine.
[15] Petar Popovski,et al. Ultra-reliable communication in 5G wireless systems , 2014, 1st International Conference on 5G for Ubiquitous Connectivity.
[16] Klaus Wehrle,et al. Channel Coding versus Cooperative ARQ: Reducing Outage Probability in Ultra-Low Latency Wireless Communications , 2015, 2015 IEEE Globecom Workshops (GC Wkshps).
[17] Tiejun Lv,et al. Enabling Technologies for Ultra-Reliable and Low Latency Communications: From PHY and MAC Layer Perspectives , 2019, IEEE Communications Surveys & Tutorials.
[18] Branka Vucetic,et al. Ultra-Reliable Low Latency Cellular Networks: Use Cases, Challenges and Approaches , 2017, IEEE Communications Magazine.
[19] Zhi Chen,et al. Efficient Multi-User Detection for Uplink Grant-Free NOMA: Prior-Information Aided Adaptive Compressive Sensing Perspective , 2017, IEEE Journal on Selected Areas in Communications.
[20] Phone Lin,et al. A Survey on Multi-Agent Reinforcement Learning Methods for Vehicular Networks , 2019, 2019 15th International Wireless Communications & Mobile Computing Conference (IWCMC).
[21] Sumit Roy,et al. Hybrid OFDMA Random Access With Resource Unit Sensing for Next-Gen 802.11ax WLANs , 2021, IEEE Transactions on Mobile Computing.
[22] Natale Patriciello,et al. 5G New Radio Numerologies and their Impact on the End-To-End Latency , 2018, 2018 IEEE 23rd International Workshop on Computer Aided Modeling and Design of Communication Links and Networks (CAMAD).
[23] Stefan Parkvall,et al. NR - The New 5G Radio-Access Technology , 2017, 2018 IEEE 87th Vehicular Technology Conference (VTC Spring).
[24] Preben E. Mogensen,et al. A flexible 5G frame structure design for frequency-division duplex cases , 2016, IEEE Communications Magazine.
[25] Gerhard Fettweis,et al. 5G-Enabled Tactile Internet , 2016, IEEE Journal on Selected Areas in Communications.
[26] Haiming Wang,et al. Principle and Performance of Semi-Persistent Scheduling for VoIP in LTE System , 2007, 2007 International Conference on Wireless Communications, Networking and Mobile Computing.
[27] Wanshi Chen,et al. 5G-Based Systems Design for Tactile Internet , 2019, Proceedings of the IEEE.
[28] Jeffrey H. Reed,et al. Extending LTE into the Unlicensed Spectrum: Technical Analysis of the Proposed Variants , 2017, IEEE Communications Standards Magazine.
[29] Martin Reisslein,et al. Ultra-Low Latency (ULL) Networks: The IEEE TSN and IETF DetNet Standards and Related 5G ULL Research , 2018, IEEE Communications Surveys & Tutorials.
[30] Rashid Ali,et al. Reinforcement Learning-Enabled Cross-Layer Optimization for Low-Power and Lossy Networks under Heterogeneous Traffic Patterns , 2020, Sensors.
[31] Ying-Chang Liang,et al. Incentive Design for Efficient Federated Learning in Mobile Networks: A Contract Theory Approach , 2019, 2019 IEEE VTS Asia Pacific Wireless Communications Symposium (APWCS).
[32] David López-Pérez,et al. 3GPP LTE-WLAN Aggregation Technologies: Functionalities and Performance Comparison , 2018, IEEE Communications Magazine.
[33] Byeong Gi Lee,et al. Generalized CSMA/CA Protocol for OFDMA Systems , 2008, IEEE GLOBECOM 2008 - 2008 IEEE Global Telecommunications Conference.
[34] Lihua Ruan,et al. Low-Latency Federated Reinforcement Learning-Based Resource Allocation in Converged Access Networks , 2020, 2020 Optical Fiber Communications Conference and Exhibition (OFC).
[35] Lingyang Song,et al. Deep Learning for Ultra-Reliable and Low-Latency Communications in 6G Networks , 2020, IEEE Network.
[36] Beng Chin Ooi,et al. The Disruptions of 5G on Data-Driven Technologies and Applications , 2019, IEEE Transactions on Knowledge and Data Engineering.
[37] Adnan Aijaz,et al. On Performance Evaluation of Random Access Enhancements for 5G uRLLC , 2019, 2019 IEEE Wireless Communications and Networking Conference (WCNC).
[38] David Grace,et al. Application of Q-Learning for RACH Access to Support M2M Traffic over a Cellular Network , 2014 .
[39] Umer Salim,et al. Improving Ultra-Reliable Low-Latency Communication in multiplexing with Enhanced Mobile Broadband in grant-free resources , 2019, 2019 IEEE 30th Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).
[40] Jonas Medbo,et al. Numerology and frame structure for 5G radio access , 2016, 2016 IEEE 27th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[41] Albert Cabellos-Aparicio,et al. Routing Based on Deep Reinforcement Learning in Optical Transport Networks , 2019, 2019 Optical Fiber Communications Conference and Exhibition (OFC).
[42] Umer Salim,et al. Strategies to meet the configured repetitions in URLLC Uplink Grant-Free transmission , 2019, 2019 16th International Symposium on Wireless Communication Systems (ISWCS).
[43] Dong-Joon Shin,et al. Generalized RACH-Less Handover for Seamless Mobility in 5G and Beyond Mobile Networks , 2019, IEEE Wireless Communications Letters.
[44] Mohamed-Slim Alouini,et al. Effective Capacity Analysis for VR-HARQ Systems , 2019, 2019 IEEE/CIC International Conference on Communications in China (ICCC).
[46] Bo Ai,et al. Coded Tandem Spreading Multiple Access for Massive Machine-Type Communications , 2018, IEEE Wireless Communications.
[47] Truong Cong Thang,et al. A Comprehensive Distributed Queue-Based Random Access Framework for mMTC in LTE/LTE-A Networks With Mixed-Type Traffic , 2019, IEEE Transactions on Vehicular Technology.
[48] Athanasios V. Vasilakos,et al. A survey of millimeter wave communications (mmWave) for 5G: opportunities and challenges , 2015, Wireless Networks.
[49] Hussein Moradi,et al. OFDM Inspired Waveforms for 5G , 2016, IEEE Communications Surveys & Tutorials.
[50] Ilenia Tinnirello,et al. Kalman filter estimation of the number of competing terminals in an IEEE 802.11 network , 2003, IEEE INFOCOM 2003. Twenty-second Annual Joint Conference of the IEEE Computer and Communications Societies (IEEE Cat. No.03CH37428).
[51] Joachim Sachs,et al. Enhanced Radio Access and Data Transmission Procedures Facilitating Industry-Compliant Machine-Type Communications over LTE-Based 5G Networks , 2016, IEEE Wireless Communications.
[52] Y.-P. Eric Wang,et al. Analysis of ultra-reliable and low-latency 5G communication for a factory automation use case , 2015, 2015 IEEE International Conference on Communication Workshop (ICCW).
[53] Byung-Seo Kim,et al. Fair and Efficient Channel Observation-Based Listen-Before Talk (CoLBT) for LAA-WiFi Coexistence in Unlicensed LTE , 2018, 2018 Tenth International Conference on Ubiquitous and Future Networks (ICUFN).
[54] Byung-Seo Kim,et al. Design of MAC Layer Resource Allocation Schemes for IEEE 802.11ax: Future Directions , 2018 .
[55] Joseph M. Romano,et al. Creating Realistic Virtual Textures from Contact Acceleration Data , 2012, IEEE Transactions on Haptics.
[56] Geng Wu,et al. LTE with listen-before-talk in unlicensed spectrum , 2015, 2015 IEEE International Conference on Communication Workshop (ICCW).
[57] Monica Nicoli,et al. Federated Learning With Cooperating Devices: A Consensus Approach for Massive IoT Networks , 2019, IEEE Internet of Things Journal.
[58] H. S. Varsha,et al. The tactile Internet , 2017, 2017 International Conference on Innovative Mechanisms for Industry Applications (ICIMIA).
[59] Wei Li,et al. A 5G Radio-Light SDN Architecture for Wireless and Mobile Network Access in Buildings , 2018, 2018 IEEE 5G World Forum (5GWF).
[60] Zhongming Zheng,et al. LTE-unlicensed: the future of spectrum aggregation for cellular networks , 2015, IEEE Wireless Communications.
[61] Riku Jäntti,et al. Analysis of transmission methods for ultra-reliable communications , 2015, 2015 IEEE 26th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[62] Arumugam Nallanathan,et al. RACH Preamble Repetition in NB-IoT Network , 2018, IEEE Communications Letters.
[63] Chen Qi,et al. Deep Reinforcement Learning With Discrete Normalized Advantage Functions for Resource Management in Network Slicing , 2019, IEEE Communications Letters.
[64] Martin Maier,et al. Towards immersive tactile Internet experiences: Low-latency FiWi enhanced mobile networks with edge intelligence [Invited] , 2019, IEEE/OSA Journal of Optical Communications and Networking.
[65] Abd-Elhamid M. Taha,et al. Uplink Scheduling in LTE and LTE-Advanced: Tutorial, Survey and Evaluation Framework , 2014, IEEE Communications Surveys & Tutorials.
[66] Shiwen Mao,et al. Advanced Wireless LAN Technologies: IEEE 802.11AC and Beyond , 2015, GETMBL.
[67] Jin Yang,et al. Evolved Universal Terrestrial Radio Access Network (EUTRAN) , 2017 .
[68] Wei Feng,et al. Cell-Free Satellite-UAV Networks for 6G Wide-Area Internet of Things , 2020 .
[69] Alexander Golitschek Edler von Elbwart,et al. Fairness and throughput analysis for generalized proportional fair frequency scheduling in OFDMA , 2005, 2005 IEEE 61st Vehicular Technology Conference.
[70] David López-Pérez,et al. IEEE 802.11be Extremely High Throughput: The Next Generation of Wi-Fi Technology Beyond 802.11ax , 2019, IEEE Communications Magazine.
[71] Young-June Choi,et al. Multichannel random access in OFDMA wireless networks , 2006, IEEE Journal on Selected Areas in Communications.
[72] Boris Bellalta,et al. Target Wake Time: Scheduled Access in IEEE 802.11ax WLANs , 2018, IEEE Wireless Communications.
[73] Mohsen Guizani,et al. Reliable Federated Learning for Mobile Networks , 2019, IEEE Wireless Communications.
[74] Ke Zhang,et al. Deep Reinforcement Learning for Edge Computing and Resource Allocation in 5G Beyond , 2019, 2019 IEEE 19th International Conference on Communication Technology (ICCT).
[75] Adlen Ksentini,et al. General Model for RACH Procedure Performance Analysis , 2016, IEEE Communications Letters.
[76] Neeraj Kumar,et al. Tactile Internet for Autonomous Vehicles: Latency and Reliability Analysis , 2019, IEEE Wireless Communications.
[77] Li-Chun Wang,et al. Prioritized resource reservation for reducing random access delay in 5G URLLC , 2017, 2017 IEEE 28th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[78] Bo Hu,et al. Improving the transmission reliability in smart factory through spatial diversity with ARQ , 2016, 2016 IEEE/CIC International Conference on Communications in China (ICCC).
[79] Xiaoli Chu,et al. Density Analysis of LTE-LAA Networks Coexisting With WiFi Sharing Multiple Unlicensed Channels , 2019, IEEE Access.
[80] Edward W. Knightly,et al. IEEE 802.11ay: Next-Generation 60 GHz Communication for 100 Gb/s Wi-Fi , 2017, IEEE Communications Magazine.
[81] Giuseppe Piro,et al. Downlink Packet Scheduling in LTE Cellular Networks: Key Design Issues and a Survey , 2013, IEEE Communications Surveys & Tutorials.
[82] Satoshi Nagata,et al. 5G NR Radio Interface , 2018, J. ICT Stand..
[83] Xianbin Wang,et al. Toward Massive Machine Type Communications in Ultra-Dense Cellular IoT Networks: Current Issues and Machine Learning-Assisted Solutions , 2018, IEEE Communications Surveys & Tutorials.
[84] Zexian Li,et al. Optimized transmission and resource allocation strategies for ultra-reliable communications , 2016, 2016 IEEE 27th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC).
[85] Paul Daniel Mitchell,et al. Intelligent RACH Access Techniques to Support M2M Traffic in Cellular Networks , 2018, IEEE Transactions on Vehicular Technology.
[86] Boris Bellalta,et al. IEEE 802.11ax: High-efficiency WLANS , 2015, IEEE Wireless Communications.
[87] Joel J. P. C. Rodrigues,et al. Tactile Internet for Smart Communities in 5G: An Insight for NOMA-Based Solutions , 2019, IEEE Transactions on Industrial Informatics.
[88] Shuangfeng Han,et al. Non-orthogonal multiple access for 5G: solutions, challenges, opportunities, and future research trends , 2015, IEEE Communications Magazine.
[89] Kay M. Stanney,et al. Virtual Environment Usage Protocols , 2014, Handbook of Virtual Environments, 2nd ed..
[90] Min Huang,et al. Adaptive pf scheduling algorithm in LTE cellular system , 2010, 2010 International Conference on Information and Communication Technology Convergence (ICTC).
[91] Gerhard P. Fettweis,et al. The Tactile Internet: Applications and Challenges , 2014, IEEE Vehicular Technology Magazine.
[92] Roberto Proietti,et al. DeepRMSA: A Deep Reinforcement Learning Framework for Routing, Modulation and Spectrum Assignment in Elastic Optical Networks , 2019, Journal of Lightwave Technology.
[93] Robert Baldemair,et al. 5G Radio Network Design for Ultra-Reliable Low-Latency Communication , 2018, IEEE Network.
[94] Jinho Choi. On the Adaptive Determination of the Number of Preambles in RACH for MTC , 2016, IEEE Communications Letters.
[95] Vicent Pla,et al. On the Accurate Performance Evaluation of the LTE-A Random Access Procedure and the Access Class Barring Scheme , 2017, IEEE Transactions on Wireless Communications.
[96] Wojciech Samek,et al. Enhanced Machine Learning Techniques for Early HARQ Feedback Prediction in 5G , 2018, IEEE Journal on Selected Areas in Communications.
[97] Byung-Seo Kim,et al. Channel observation-based scaled backoff mechanism for high-efficiency WLANs , 2018 .
[98] Rashid Ali,et al. LWA in 5G: State-of-the-Art Architecture, Opportunities, and Research Challenges , 2018, IEEE Communications Magazine.
[99] Peter Richtárik,et al. Federated Optimization: Distributed Machine Learning for On-Device Intelligence , 2016, ArXiv.
[100] Abhinav Kumar,et al. A novel RACH mechanism for machine type communications in cellular networks , 2017, 2017 IEEE International Conference on Advanced Networks and Telecommunications Systems (ANTS).
[101] Cyril Leung,et al. Proportional Fair Multiuser Scheduling in LTE , 2009, IEEE Signal Processing Letters.
[102] Preben E. Mogensen,et al. Fundamental tradeoffs among reliability, latency and throughput in cellular networks , 2014, 2014 IEEE Globecom Workshops (GC Wkshps).
[103] Weisong Shi,et al. Collaborative Data Scheduling for Vehicular Edge Computing via Deep Reinforcement Learning , 2020, IEEE Internet of Things Journal.
[104] Xiao Liu,et al. Energy Efficiency Optimization for Communication of Air-Based Information Network with Guaranteed Timing Constraints , 2017, J. Signal Process. Syst..
[105] Ömer Bulakci,et al. Emerging network architecture and functional design considerations for 5G radio access , 2016, Trans. Emerg. Telecommun. Technol..
[106] Arnab Roy,et al. A Tutorial on Beam Management for 3GPP NR at mmWave Frequencies , 2018, IEEE Communications Surveys & Tutorials.
[107] Boris Bellalta,et al. Time-Sensitive Networking in IEEE 802.11be: On the Way to Low-Latency WiFi 7 , 2019, Sensors.
[108] Zhanyu Ma,et al. Vehicular Edge Computing via Deep Reinforcement Learning , 2019, ArXiv.
[109] Robert W. Heath,et al. Five disruptive technology directions for 5G , 2013, IEEE Communications Magazine.
[110] Weihua Zhuang,et al. RACH Performance Analysis for Large-Scale Cellular IoT Applications , 2019, IEEE Internet of Things Journal.
[111] Oussama Habachi,et al. Fast Uplink Grant for NOMA: a Federated Learning based Approach , 2019, UNet.
[112] Geoffrey Ye Li,et al. Deep Reinforcement Learning for Resource Allocation in V2V Communications , 2017, 2018 IEEE International Conference on Communications (ICC).
[113] Byung-Seo Kim,et al. Deep Reinforcement Learning Paradigm for Performance Optimization of Channel Observation–Based MAC Protocols in Dense WLANs , 2019, IEEE Access.
[114] Jeroen Wigard,et al. On the Impact of Realistic Control Channel Constraints on QoS Provisioning in UTRAN LTE , 2009, 2009 IEEE 70th Vehicular Technology Conference Fall.
[115] Vitaly Shmatikov,et al. Membership Inference Attacks Against Machine Learning Models , 2016, 2017 IEEE Symposium on Security and Privacy (SP).
[116] Nguyen H. Tran,et al. AFRL: Adaptive federated reinforcement learning for intelligent jamming defense in FANET , 2020, Journal of Communications and Networks.
[117] Jeffrey H. Reed,et al. Artificial Intelligence Defined 5G Radio Access Networks , 2018, IEEE Communications Magazine.
[118] Walid Saad,et al. Distributed Federated Learning for Ultra-Reliable Low-Latency Vehicular Communications , 2018, IEEE Transactions on Communications.
[119] Vasilis Friderikos,et al. Realizing the Tactile Internet: Haptic Communications over Next Generation 5G Cellular Networks , 2015, IEEE Wireless Communications.
[120] Walid Saad,et al. Federated Learning for Ultra-Reliable Low-Latency V2V Communications , 2018, 2018 IEEE Global Communications Conference (GLOBECOM).
[121] Rahim Tafazolli,et al. Success Probability of Multiple-Preamble-Based Single-Attempt Random Access to Mobile Networks , 2017, IEEE Communications Letters.
[122] Heather Culbertson,et al. Modeling and Rendering Realistic Textures from Unconstrained Tool-Surface Interactions , 2014, IEEE Transactions on Haptics.
[123] Fredrik Gunnarsson,et al. LTE release 14 outlook , 2016, IEEE Communications Magazine.
[124] Mohsen Guizani,et al. Home M2M networks: Architectures, standards, and QoS improvement , 2011, IEEE Communications Magazine.
[125] David Grace,et al. Q-learning Based Random Access with Collision free RACH Interactions for Cellular M2M , 2015, 2015 9th International Conference on Next Generation Mobile Applications, Services and Technologies.
[126] Weixiao Meng,et al. Joint PHY/MAC Layer AN-Assisted Security Scheme in SVD-Based MIMO HARQ system , 2019, 2019 IEEE/CIC International Conference on Communications in China (ICCC).
[127] Yan Zhang,et al. Differentially Private Asynchronous Federated Learning for Mobile Edge Computing in Urban Informatics , 2020, IEEE Transactions on Industrial Informatics.
[128] H. Vincent Poor,et al. Experienced Deep Reinforcement Learning With Generative Adversarial Networks (GANs) for Model-Free Ultra Reliable Low Latency Communication , 2019, IEEE Transactions on Communications.
[129] Evgeny Khorov,et al. A Tutorial on IEEE 802.11ax High Efficiency WLANs , 2019, IEEE Communications Surveys & Tutorials.
[130] Chunlin Yan,et al. On uplink non-orthogonal multiple access for 5g: opportunities and challenges , 2017, China Communications.
[131] Kaibin Huang,et al. Broadband Analog Aggregation for Low-Latency Federated Edge Learning , 2018, IEEE Transactions on Wireless Communications.
[132] Dusit Niyato,et al. A Secure Federated Learning Framework for 5G Networks , 2020, IEEE Wireless Communications.
[133] Hajo Bakker,et al. Adaptive fairness control for a proportional fair LTE scheduler , 2010, 21st Annual IEEE International Symposium on Personal, Indoor and Mobile Radio Communications.
[134] Geyong Min,et al. Federated Learning Based Proactive Content Caching in Edge Computing , 2018, 2018 IEEE Global Communications Conference (GLOBECOM).
[135] Josep Mangues-Bafalluy,et al. Subband Configuration Optimization for Multiplexing of Numerologies in 5G TDD New Radio , 2018, 2018 IEEE 29th Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).
[136] Joonhyuk Kang,et al. Coded Federated Computing in Wireless Networks with Straggling Devices and Imperfect CSI , 2019, 2019 IEEE International Symposium on Information Theory (ISIT).
[137] Yuguang Fang,et al. IEEE 802.11ay-Based mmWave WLANs: Design Challenges and Solutions , 2018, IEEE Communications Surveys & Tutorials.
[138] Young-Tak Kim,et al. Cognitive backoff mechanism for IEEE802.11ax high-efficiency WLANs , 2019, Journal of Communications and Networks.
[139] Younsun Kim,et al. Outer Code-Based HARQ Retransmission for Multicast/Broadcast Services in 5G , 2019, 2019 IEEE 90th Vehicular Technology Conference (VTC2019-Fall).
[140] Blaise Agüera y Arcas,et al. Communication-Efficient Learning of Deep Networks from Decentralized Data , 2016, AISTATS.