TY - JOUR
T1 - MIMO-NOMA-Aided Healthcare IoT Networking
T2 - Automated Massive Connectivity Protocol
AU - Bing, Li
AU - Gu, Yating
AU - Hu, Lanke
AU - Yin, Yue
AU - Wang, Jue
N1 - Publisher Copyright:
© 1975-2011 IEEE.
PY - 2023/11/1
Y1 - 2023/11/1
N2 - This paper addresses the design of multiple access protocol for healthcare Internet of things (HIoT) networking, where devices are massively deployed to facilitate ubiquitous service provision. While non-orthogonal multiple access (NOMA) has been considered a major breakthrough for next generation smart healthcare network and beyond, automated random access enabled massive connectivity remains a challenge. To this end, automated massive connectivity protocol is developed, where multiple devices compete for a power level to gain access whenever needed. The power level is selected randomly from a predetermined set derived using large dimensional analysis presuming user-load K significantly outnumbers the antennas equipped at access point (AP). As a contention-based random access protocol, the contention is resolved using ALOHA protocol. Moreover, simple forward error corrections (FECs) are introduced to enable massive connectivity in finite blocklength regime as well as to mitigate severe interference. In contrast to existing multiple-input multiple-output NOMA (MIMO-NOMA), the proposed scheme avoids spectral efficiency penalty due to preamble and the potentially long latency due to infinite blocklength as a result of density evolution method. The simulated results demonstrate that quality of service (QoS) in terms of enhanced random access, improved spectral efficiency and reduced power consumption, which justify the proposed MIMO-NOMA design evidently.
AB - This paper addresses the design of multiple access protocol for healthcare Internet of things (HIoT) networking, where devices are massively deployed to facilitate ubiquitous service provision. While non-orthogonal multiple access (NOMA) has been considered a major breakthrough for next generation smart healthcare network and beyond, automated random access enabled massive connectivity remains a challenge. To this end, automated massive connectivity protocol is developed, where multiple devices compete for a power level to gain access whenever needed. The power level is selected randomly from a predetermined set derived using large dimensional analysis presuming user-load K significantly outnumbers the antennas equipped at access point (AP). As a contention-based random access protocol, the contention is resolved using ALOHA protocol. Moreover, simple forward error corrections (FECs) are introduced to enable massive connectivity in finite blocklength regime as well as to mitigate severe interference. In contrast to existing multiple-input multiple-output NOMA (MIMO-NOMA), the proposed scheme avoids spectral efficiency penalty due to preamble and the potentially long latency due to infinite blocklength as a result of density evolution method. The simulated results demonstrate that quality of service (QoS) in terms of enhanced random access, improved spectral efficiency and reduced power consumption, which justify the proposed MIMO-NOMA design evidently.
KW - Continuous phase modulation
KW - Internet of Things
KW - interference cancellation
KW - multi-antenna
KW - network automation
KW - nonorthogonal multiple access
KW - random access
UR - http://www.scopus.com/inward/record.url?scp=85179787442&partnerID=8YFLogxK
U2 - 10.1109/TCE.2023.3340322
DO - 10.1109/TCE.2023.3340322
M3 - 文章
AN - SCOPUS:85179787442
SN - 0098-3063
VL - 69
SP - 697
EP - 708
JO - IEEE Transactions on Consumer Electronics
JF - IEEE Transactions on Consumer Electronics
IS - 4
ER -