计算机科学
分布式计算
无线
计算
无线传感器网络
延迟(音频)
可靠性(半导体)
通信协议
低延迟(资本市场)
计算机网络
嵌入式系统
电信
算法
量子力学
物理
功率(物理)
作者
Zhiyong Feng,Zhiqing Wei,Chen Xu,Heng Yang,Qixun Zhang,Ping Zhang
出处
期刊:IEEE Network
[Institute of Electrical and Electronics Engineers]
日期:2021-11-01
卷期号:35 (6): 34-42
被引量:82
标识
DOI:10.1109/mnet.121.2100320
摘要
With the rapid development of the smart city, high-level autonomous driving, intelligent manufacturing, and so on, the stringent industrial-level requirements of extremely low latency and high reliability for communication and new trends in sub-centimeter sensing have transcended the abilities of 5G and call for the development of 6G. Based on analyzing the function design of the communication, sensing, and emerging intelligent computation systems, we propose the joint communication, sensing, and computation (JCSC) framework for the 6G intelligent machine-type communication (IMTC) network to realize low latency and high reliability of communication, highly accurate sensing, and fast environment adaption. In the proposed JCSC framework, the communication, sensing, and computation abilities cooperate to benefit each other by utilizing the unified hardware, resource, and protocol design. Sensing information is exploited as a priori information to enhance the reliability and latency performance of wireless communication and to optimize the resource utilization of the communication network, which further improves the distributed computation and cooperative sensing ability. We propose promising enabling technologies such as joint communication and sensing (JCS), JCSC wireless networking techniques, and intelligent computation techniques. We also summarize the challenges to achieve the JCSC framework. Then we introduce intelligent flexible manufacturing as a typical use case of the IMTC with JCSC framework, where the enabling technologies are deployed. Finally, we present the simulation results to prove the feasibility of the JCSC framework by evaluating the JCSC waveform, and the JCSC-enabled neighbor discovery and medium access control.
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