Aug 2026· Italian National Conference on Sensors· Vol 26, pp. 5163· 0 citations· 28 references
Medicine
TL;DR
This work provides effective support for achieving highly reliable control in SDSNs under failure scenarios by adopting IHAOAVOA during topology fluctuations or high-failure phases to reduce delay, and switching to DNSGA-II during stable phases to optimize load distribution, the overall network robustness can be improved under the evaluated failure scenarios.
Abstract
Software-defined satellite networks (SDSNs) enhance resource utilization and flexibility in space-based networks by leveraging a global view and programmability. A highly reliable control plane is essential to sustain network operations. However, the highly dynamic topology and physical failures in Low Earth Orbit (LEO) environments can cause satellite node outages or inter-satellite link disruptions, leading to control plane interruptions and local load imbalances. To address this, we propose a switch migration mechanism for failure recovery and establish a multi-objective migration model that jointly optimizes control link delay, controller load variance, and normalized migration ratio. To accommodate distinct dynamic characteristics such as frequent topology changes, failure-intensive periods, and stable periods, we design two algorithms: a robust migration algorithm, DNSGA-II, which features population diversity maintenance and environmental awareness, and an efficient migration algorithm, IHAOAVOA, which integrates strong global exploration with powerful local exploitation. Simulation results show that IHAOAVOA rapidly converges under large-scale failures, achieving millisecond-level delay recovery and low normalized migration ratio overhead during failure-intensive periods, while DNSGA-II focuses on long-term load balancing and system stability during stable periods, effectively suppressing localized controller overload. By adopting IHAOAVOA during topology fluctuations or high-failure phases to reduce delay, and switching to DNSGA-II during stable phases to optimize load distribution, the overall network robustness can be improved under the evaluated failure scenarios. This work provides effective support for achieving highly reliable control in SDSNs under failure scenarios.
This thesis provides an end-to-end mathematical and machine learning framework for designing dependable, low-latency, and scalable SDN infrastructures.
A rolling-horizon migration-aware dynamic greedy control node placement algorithm (RH-MA-DGCNP) is proposed, which updates the CN placement and the affiliation between access-layer satellites and CNs at each reconfiguration epoch while jointly considering the handover delay and the migration delay caused by transferrin...
Yang Liu, Wen Liu, Wenliang Lin et al.· Electronics· 0 citations
This paper incorporates the flexible optical-layer resource scheduling capability of software-defined optical networks (SDONs) and proposes an SDON-enabled CPPS model along with a control network optimization method, and proposes a multidimensional vulnerability assessment method for CPPSs.
This study addresses the Switch Migration Problem (SMP) in distributed Software‐Defined Networking (SDN) control planes and proposes a speculative predictive control‐based load balancing approach. Conventional methods usually migrate switches only after controllers are overloaded, leading to response delays and netwo...
Taiki Matsumura, S. Koakutsu, Fei Qian· IEEJ TRANSACTIONS ON ELECTRI...· 0 citations
By implementing a proactive reserve scheduling mechanism, distribution networks (DNs) can optimize emergency resource deployment to improve fault recovery resilience. To address the limitations of existing pre-disaster preparation strategies that only consider limited resources, this paper proposes a proactive scheduli...
Software defined networking (SDN) introduces a flexible network control paradigm by separating the control plane from the data plane. Due to its improved programmability and scalability, it raises two important challenges: determining optimal controller placement and ensuring efficient load distribution among multiple...
Prasanthi B. V., P. Reddy· EAI Endorsed Transactions on...· 0 citations
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