Research on Microgrid Optimal Scheduling Based on the Salp Swarm Algorithm

To address uneven population distribution and premature convergence of the standard Salp Swarm Algorithm (SSA) in grid-connected microgrid scheduling, this study develops an Improved Salp Swarm Algorithm (ISSA). Sine chaotic mapping is used for population initialization. A distance-adaptive follower update is then employed, in which the weight is determined by the normalized distance between an individual and the current best solution, and an acceptance-based Lévy perturbation is applied to the best solution to enhance escape from local optima. The resulting ISSA is applied to a microgrid scheduling model that minimizes economic operation and environmental costs. Benchmark function and microgrid case studies are used to evaluate optimization accuracy, convergence behavior and scheduling feasibility.

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Publication Details

Journal
Processes
Published
2026-09-30
DOI
https://doi.org/10.3390/pr14193147
Primary Topic
Microgrid Control and Optimization
Type
article
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Research on Microgrid Optimal Scheduling Based on the Salp Swarm Algorithm

Ai-Qing Tian, Qi Chen, Li Song, Tao Ma
Processes
Microgrid Control and Optimization
article

Research on Microgrid Optimal Scheduling Based on the Salp Swarm Algorithm

Ai-Qing Tian, Qi Chen, Li Song, Tao Ma
article en

Abstract

To address uneven population distribution and premature convergence of the standard Salp Swarm Algorithm (SSA) in grid-connected microgrid scheduling, this study develops an Improved Salp Swarm Algorithm (ISSA). Sine chaotic mapping is used for population initialization. A distance-adaptive follower update is then employed, in which the weight is determined by the normalized distance between an individual and the current best solution, and an acceptance-based Lévy perturbation is applied to the best solution to enhance escape from local optima. The resulting ISSA is applied to a microgrid scheduling model that minimizes economic operation and environmental costs. Benchmark function and microgrid case studies are used to evaluate optimization accuracy, convergence behavior and scheduling feasibility.

ProcessesVol. 14(19)
Wuhan Polytechnic University (CN), Hubei Polytechnic Institute (CN), Southwest Jiaotong University (CN)
Openalex Percentile: Top 16%
Microgrid Control and Optimization
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Research on Microgrid Optimal Scheduling Based on the Salp Swarm Algorithm — Ai-Qing Tian, Qi Chen, et al. · Processes (2026) | TGRS Research Map | TGRS