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Chaos suppression in a fractional order financial system using intelligent regrouping PSO based fractional fuzzy control policy in the presence of fractional Gaussian noise

机译:在分数高斯噪声存在下,使用基于智能重组PSO的分数模糊控制策略抑制分数阶金融系统中的混沌

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摘要

Financial systems are known to have irregular and erratic fluctuations due to diverse influences and often result in economic crisis and huge financial losses. Recent models of financial systems show that they behave chaotically and have long range memory dependence. Mitigating these undesirable chaotic natures of financial systems by appropriate control policies is important in order to reduce investment risks and improve economic performance. In this paper, a fractional order fuzzy control policy is employed to suppress the chaotic dynamics of a representative chaotic fractional order financial system. An intelligent Regrouping Particle Swarm Optimization (Reg-PSO) is used to design the numeric weights of the control policy and the methodology is demonstrated by credible simulations. The designed fractional fuzzy control policies are shown to work well with respect to conventional fuzzy control policies in the presence of persistent and anti-persistent noise, which can be due to additional extraneous influences on the system.
机译:众所周知,由于各种影响,金融系统会出现不规则和不稳定的波动,并经常导致经济危机和巨大的金融损失。金融系统的最新模型表明,它们的行为混乱并且具有长期记忆依赖性。为了降低投资风险和改善经济绩效,通过适当的控制政策来缓解金融系统的这些不良混乱性质非常重要。本文采用分数阶模糊控制策略来抑制代表混沌分数阶金融系统的混沌动力学。智能的重组粒子群优化算法(Reg-PSO)用于设计控制策略的数字权重,并且该方法已通过可靠的模拟进行了演示。在存在持续性噪声和反持续性噪声的情况下,表明设计的分数模糊控制策略相对于常规模糊控制策略而言效果很好,这可能是由于对系统的其他额外影响所致。

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