SkyOctopus: Enabling Low-Latency Mobile Satellite Network through Multiple Anchors
Shaojie Su, Jiasheng Wu, Zijie Ying, Zhiyuan Zhao, Xiangyu Jia, Wenjun, Zhu, Yue Gao

TL;DR
SkyOctopus introduces a multi-anchor architecture for mobile satellite networks, significantly reducing latency by enabling connections to multiple global anchor points and optimizing routing for user requests.
Contribution
It proposes a novel multi-anchor satellite network architecture with traffic classifiers and optimal anchor selection, improving latency over existing single-anchor designs.
Findings
Reduces end-to-end latency by up to 53%
Demonstrates effectiveness with real satellite constellations
Outperforms standard 5G NTN and existing schemes
Abstract
The rapid deployment of low earth orbit (LEO) satellite constellations has drawn attention to the potential of nonterrestrial networks (NTN) in providing global communication services. Telecom operators are attempting to collaborate with satellite network providers to develop mobile satellite networks, which serve as an effective supplement to terrestrial networks. However, current mobile satellite network architectures still employ the single-anchor design of terrestrial mobile networks, leading to severely circuitous routing for users and significantly impacting their service experience. To reduce unnecessary latency caused by circuitous routing and provide users with low-latency global internet services, this paper presents SkyOctopus, an advanced multi-anchor mobile satellite network architecture. SkyOctopus innovatively deploys traffic classifiers on satellites to enable…
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Taxonomy
TopicsSatellite Communication Systems · Opportunistic and Delay-Tolerant Networks · Distributed and Parallel Computing Systems
