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A New Modified Teaching-Learning Algorithm for Reserve Constrained Dynamic Economic Dispatch

机译:储备受限的动态经济调度的改进的教学算法

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摘要

This paper presents a new optimization algorithm, named modified teaching-learning algorithm, to solve a more practical formulation of the reserve constrained dynamic economic dispatch of thermal units considering the network losses and operating limitations of the generating units (i.e., the valve loading effect and ramp rate limits). Unlike the previous approaches, three types of the system spinning reserve requirements are explicitly modeled in the problem and a new constraint-handling is proposed to satisfy them. The proposed teaching-learning optimization algorithm is a new population-based optimization method features between the teacher and learners (students). Therefore, this algorithm searches for the global optimal solution through two main phases: 1) the “teacher phase” and 2) the “learner phase”. Nevertheless, these two phases are not adequate for learning interaction between the teacher and the learners in the entire search space. Thus, in this paper a new phase named “modified phase” based on a self-adaptive learning mechanism is added to the algorithm to improve the process of knowledge learning among the learners and accordingly generate promising candidate solutions. The proposed framework is applied to 5-, 10-, 30-, 40-, and 140-unit test systems in order to evaluate its efficiency and feasibility.
机译:本文提出了一种新的优化算法,即改进的教学算法,以考虑网络损失和发电机组的运行限制(即阀门负荷效应和斜坡速率限制)。与以前的方法不同,在该问题中显式地建模了三种类型的系统旋转备用要求,并提出了一种新的约束处理来满足这些要求。提出的教学优化算法是一种新的基于人口的教师与学习者(学生)之间的优化方法。因此,该算法通过两个主要阶段搜索全局最优解:1)“教师阶段”和2)“学习者阶段”。然而,这两个阶段不足以在整个搜索空间中实现教师和学习者之间的学习互动。因此,在本文中,基于自适应学习机制的新阶段被称为“修改阶段”,以改善学习者之间的知识学习过程,从而产生有希望的候选解决方案。所提出的框架适用于5、10、30、40和140单元测试系统,以评估其效率和可行性。

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