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A GA-API Solution for the Economic Dispatch of Generation in Power System Operation

机译:用于电力系统发电经济调度的GA-API解决方案

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This work proposes a novel heuristic-hybrid optimization method designed to solve the nonconvex economic dispatch problem in power systems. Due to the fast computational capabilities of the proposed algorithm, it is envisioned that it becomes an operations tool for both the generation companies and the TSO/ISO. The methodology proposed improves the overall search capability of two powerful heuristic optimization algorithms: a special class of ant colony optimization called API and a real coded genetic algorithm (RCGA). The proposed algorithm, entitled GAAPI, is a relatively simple but robust algorithm, which combines the downhill behavior of API (a key characteristic of optimization algorithms) and a good spreading in the solution space of the GA search strategy (a guarantee to avoid being trapped in local optima). The feasibility of the proposed method is first tested on a number of well-known complex test functions, as well as on four different power test systems having different sizes and complexities. The results are analyzed in terms of both quality of the solution and the computational efficiency; it is shown that the proposed GAAPI algorithm is capable of obtaining highly robust, quality solutions in a reasonable computational time, compared to a number of similar algorithms proposed in the literature.
机译:这项工作提出了一种新颖的启发式混合优化方法,旨在解决电力系统中的非凸经济调度问题。由于所提出算法的快速计算能力,可以预见它将成为发电公司和TSO / ISO的一种操作工具。所提出的方法改进了两种强大的启发式优化算法的整体搜索能力:一类称为API的特殊蚁群优化算法和一个实际编码遗传算法(RCGA)。提出的名为GAAPI的算法是一种相对简单但健壮的算法,它结合了API的下坡行为(优化算法的关键特性)和在GA搜索策略的求解空间中的良好扩展性(可以避免陷入陷阱)局部最优)。首先在许多众所周知的复杂测试功能以及具有不同大小和复杂度的四个不同的功率测试系统上测试该方法的可行性。根据解决方案的质量和计算效率来分析结果;结果表明,与文献中提出的许多类似算法相比,所提出的GAAPI算法能够在合理的计算时间内获得高度鲁棒的高质量解决方案。

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