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首页> 外文期刊>Journal of Optimization Theory and Applications >Application of a Fuzzy Programming Through Stochastic Particle Swarm Optimization to Assessment of Filter Management Strategies in Fluid Power System Under Uncertainty
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Application of a Fuzzy Programming Through Stochastic Particle Swarm Optimization to Assessment of Filter Management Strategies in Fluid Power System Under Uncertainty

机译:不确定粒子群优化的模糊规划在不确定性流体动力系统滤波器管理策略评估中的应用

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摘要

A fuzzy programming through stochastic particle swarm optimization is developed for the assessment of filter allocation and replacement strategies in fluid power system (FPS) under uncertainty. It can not only handle uncertainties expressed as L-R fuzzy numbers but also enhance the system robustness by transforming the fuzzy inequalities into inclusive constraints. As the simulation results indicate, the developed model can successfully decrease the total cost and enhanced the safety of system. Generally, it is believed that the model can help identify excellent filter allocation and replacement strategy with minimized operation cost and system failure risk while protecting the system.
机译:开发了一种基于随机粒子群算法的模糊规划算法,用于不确定性条件下流体动力系统(FPS)中过滤器的分配和更换策略的评估。它不仅可以处理表示为L-R模糊数的不确定性,而且还可以通过将模糊不等式转换为包含性约束来增强系统的鲁棒性。仿真结果表明,所开发的模型可以成功降低总成本,提高系统安全性。通常,可以相信该模型可以在保护系统的同时,以最小的运行成本和系统故障风险帮助确定出色的过滤器分配和更换策略。

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