TY - JOUR
T1 - Dynamical Control Domain Division for Software-Defined Satellite-Ground Integrated Vehicular Networks
AU - Chen, Long
AU - Tang, Feilong
AU - Li, Xu
AU - Yang, Laurence T.
AU - Cao, Lijun
AU - Yu, Jiadi
AU - Fu, Luoyi
AU - Li, Zhetao
AU - Kong, Linghe
N1 - Publisher Copyright:
© 2013 IEEE.
PY - 2021
Y1 - 2021
N2 - Software-defined satellite-ground integrated vehicular networks have emerged as indispensable infrastructures that provide rural area coverage and diverse vehicular services. However, previous research on control domain division mostly focuses on data center networks. To address these issues, we formulate the dynamical control domain division (DCDD) problem to minimize the total management cost. Since the DCDD problem is NP-hard, we propose an approximation algorithm RDCA based on the randomized rounding. We formally analyze the performance of the RDCA algorithm. Guided by the rounding procedure, we propose a heuristic algorithm HCA to greedily choose the best controller at each time slot. Two kinds of switch migration operations are designed to further minimize the total management cost. Extensive simulations show that our HCA algorithm outperforms related schemes in terms of management cost, response time and controller load balancing.
AB - Software-defined satellite-ground integrated vehicular networks have emerged as indispensable infrastructures that provide rural area coverage and diverse vehicular services. However, previous research on control domain division mostly focuses on data center networks. To address these issues, we formulate the dynamical control domain division (DCDD) problem to minimize the total management cost. Since the DCDD problem is NP-hard, we propose an approximation algorithm RDCA based on the randomized rounding. We formally analyze the performance of the RDCA algorithm. Guided by the rounding procedure, we propose a heuristic algorithm HCA to greedily choose the best controller at each time slot. Two kinds of switch migration operations are designed to further minimize the total management cost. Extensive simulations show that our HCA algorithm outperforms related schemes in terms of management cost, response time and controller load balancing.
KW - Dynamical control domain division
KW - satellite-ground integrated vehicular networks
KW - software-defined networking.
UR - https://www.scopus.com/pages/publications/85099588223
U2 - 10.1109/TNSE.2021.3050213
DO - 10.1109/TNSE.2021.3050213
M3 - 文章
AN - SCOPUS:85099588223
SN - 2327-4697
VL - 8
SP - 2732
EP - 2741
JO - IEEE Transactions on Network Science and Engineering
JF - IEEE Transactions on Network Science and Engineering
IS - 4
ER -