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A combined neurodynamic approach to optimize the real-time price-based demand response management problem using mixed zero-one programming

机译:使用混合零一个编程优化实时价格的需求响应管理问题的组合神经动力学方法

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摘要

This paper presents a microgrid system model considering three types of load and the user's satisfaction function. The objective function with mixed zero-one programming is used to maximize every user's profit and satisfaction in the way of the demand response management under real-time price. An energy function is used to transform the constrained problem into an unconstrained problem, and two neural networks are used to find the local optimal solutions of the objective function with different rates of convergence. A neurodynamic approach is used to combine the neural networks with the particle swarm optimization to find the global optimal solution of the objective function. The simulation results show that the combined approach is effective in solving the optimal problem.
机译:本文介绍了考虑三种负载和用户满意度的微电网系统模型。 混合零一个编程的目标函数用于在实时价格下以需求响应管理的方式最大限度地提高每个用户的利润和满足感。 能量函数用于将约束问题转换为不受约束的问题,并且两个神经网络用于找到具有不同收敛速率的目标函数的本地最佳解决方案。 神经动力学方法用于将神经网络与粒子群优化组合,以找到目标函数的全局最佳解决方案。 仿真结果表明,组合方法有效解决了最佳问题。

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