TY - JOUR
T1 - Conflict Resolution Strategy in Handover Management for 4G and 5G Networks
AU - Alhammadi, Abdulraqeb
AU - Hassan, Wan Haslina
AU - El-Saleh, Ayman A.
AU - Shayea, Ibraheem
AU - Mohamad, Hafizal
AU - Daradkeh, Yousef Ibrahim
N1 - Publisher Copyright:
© 2022 Tech Science Press. All rights reserved.
PY - 2022
Y1 - 2022
N2 - Fifth-generation (5G) cellular networks offer high transmission rates in dense urban environments. However, a massive deployment of small cells will be required to provide wide-area coverage, which leads to an increase in the number of handovers (HOs). Mobility management is an important issue that requires considerable attention in heterogeneous networks, where 5G ultra-dense small cells coexist with current fourth-generation (4G) networks. Althoughmobility robustness optimization (MRO) and load balancing optimization (LBO) functions have been introduced in the 3GPP standard to address HO problems, non-robust and nonoptimal algorithms for selecting appropriateHOcontrol parameters (HCPs) still exist, and an optimal solution is subjected to compromise between LBO andMROfunctions. Thus,HOdecision algorithms become inefficient. This paper proposes a conflict resolution technique to address the contradiction between MRO and LBO functions. The proposed technique exploits received signal reference power (RSRP), cell load and user speed to adapt HO margin (HM) and time to trigger (TTT). EstimatedHMand TTT depend on a weighting function andHO type which is represented by user status duringmobility. The proposed technique is validated with other existing algorithms fromthe literature. Simulation results demonstrate that the proposed technique outperforms existing algorithms overall performance metrics. The proposed technique reduces the overall average HO ping-pong probability, HO failure rate and interruption time by more than 90%, 46% and 58%, respectively, compared with the other schemes overall speed scenarios and simulation time.
AB - Fifth-generation (5G) cellular networks offer high transmission rates in dense urban environments. However, a massive deployment of small cells will be required to provide wide-area coverage, which leads to an increase in the number of handovers (HOs). Mobility management is an important issue that requires considerable attention in heterogeneous networks, where 5G ultra-dense small cells coexist with current fourth-generation (4G) networks. Althoughmobility robustness optimization (MRO) and load balancing optimization (LBO) functions have been introduced in the 3GPP standard to address HO problems, non-robust and nonoptimal algorithms for selecting appropriateHOcontrol parameters (HCPs) still exist, and an optimal solution is subjected to compromise between LBO andMROfunctions. Thus,HOdecision algorithms become inefficient. This paper proposes a conflict resolution technique to address the contradiction between MRO and LBO functions. The proposed technique exploits received signal reference power (RSRP), cell load and user speed to adapt HO margin (HM) and time to trigger (TTT). EstimatedHMand TTT depend on a weighting function andHO type which is represented by user status duringmobility. The proposed technique is validated with other existing algorithms fromthe literature. Simulation results demonstrate that the proposed technique outperforms existing algorithms overall performance metrics. The proposed technique reduces the overall average HO ping-pong probability, HO failure rate and interruption time by more than 90%, 46% and 58%, respectively, compared with the other schemes overall speed scenarios and simulation time.
KW - 5G
KW - handover
KW - heterogeneous networks
KW - Mobility management
UR - http://www.scopus.com/inward/record.url?scp=85128695832&partnerID=8YFLogxK
U2 - 10.32604/cmc.2022.024713
DO - 10.32604/cmc.2022.024713
M3 - Article
AN - SCOPUS:85128695832
SN - 1546-2218
VL - 72
SP - 5215
EP - 5232
JO - Computers, Materials and Continua
JF - Computers, Materials and Continua
IS - 3
ER -