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Modified Shuffled Frog-Leaping Algorithm on Optimal Planning for a Stand-alone Photovoltaic System

机译:经过改进的混合青蛙跳跃算法,了解独立光伏系统的最优规划

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Shuffled frog leaping algorithm (SFLA) is a new meta-heuristic evolutionary algorithm with simple algorithm and effective calculation speed. It performs stochastic searching process that mimics natural biological evolution and the social behavior of species. SFLA conducts its formulation from two main methods, the local searching validated by particle swarm optimization and the competitiveness mixing of information implemented by shuffled complex algorithm. A modified shuffled frog leaping algorithm (MSFLA) is investigated that improves the leaping rule by properly extending the leaping step size and adding a leaping inertia component to account for social behavior. In this paper, a MSFLA is proposed to solve combinatorial optimization problem for a stand-alone photovoltaic (SPV) generation planning. Several practical installed and operated costs for a SPV system were used to trade off nonlinear system reliability in the three specified locations of Taiwan. Different degrees of loss of load hours and load profiles were investigated to achieve the long-term planning requirement.
机译:随机交叉青蛙跳跃算法(SFLA)是一种具有简单算法和有效计算速度的新的荟萃启发式进化算法。它执行随机搜索过程,以模仿自然生物进化和物种的社会行为。 SFLA通过两种主要方法进行其制剂,通过粒子群优化验证的本地搜索以及通过随机复合算法实现的信息的竞争力混合。调查了修改的混洗蛙跳跃算法(MSFLA),通过适当地延长跳跃步长并添加跳跃惯性组件来解释社会行为来改善跳跃规则。在本文中,提出了一种MSFLA来解决独立光伏(SPV)生成规划的组合优化问题。 SPV系统的几种实用安装和操作成本用于在台湾三个指定地点进行非线性系统可靠性。调查了不同程度的负载小时数和负载型材,以实现长期规划要求。

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