An Evolutionary Task Scheduling Algorithm Using Fuzzy Fitness Evaluation Method for Communication Satellite Network
Xuemei Jiang, Yangyang Guo, Yue Zhang, Yanjie Song, Witold Pedrycz,, Lining Xing

TL;DR
This paper presents an evolutionary algorithm with fuzzy fitness evaluation to optimize communication satellite network scheduling, significantly improving service time by reducing evaluation complexity in complex combinatorial problems.
Contribution
It introduces a novel fuzzy fitness evaluation method and an adaptive evolutionary algorithm to efficiently solve satellite network scheduling problems.
Findings
Fuzzy fitness evaluation reduces computation time in scheduling.
The proposed algorithm improves network service time.
Experimental results validate the effectiveness of the approach.
Abstract
Communications satellite network (CSN), as an integral component of the next generation of communication systems, has the capability to offer services globally. Data transmission in this network primarily relies on two modes: inter-satellite communication and satellite-to-ground station communication. The latter directly impacts the successful reception of data by users. However, due to resource and task limitations, finding a satisfactory solution poses a significant challenge. The communication satellite-ground station network scheduling problem (CS-GSNSP) aims to optimize CSN effectiveness by devising a plan that maximizes link construction time while considering constraints associated with satellite operation modes. The large number of tasks and numerous constraints in the problem result in a time-consuming evaluation of fitness function values. To address this issue, we propose a…
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Taxonomy
TopicsSatellite Communication Systems
