首页> 外文会议>Power systems computation conference;PSCC 2008 Glasgow >CULTURED DIFFERENTIAL COMPUTATION ALGORITHM FOR OPTIMAL CONTRACTED CAPACITY OF POWER CONSUMER WITH SELF-OWNED GENERATING UNITS
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CULTURED DIFFERENTIAL COMPUTATION ALGORITHM FOR OPTIMAL CONTRACTED CAPACITY OF POWER CONSUMER WITH SELF-OWNED GENERATING UNITS

机译:自备发电机组最优约束容量的微分计算算法

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Contracted capacity setting is a discrete and nonlinear optimization problem in consideration of expenditure on the electricity from the utility and cost of the self-owned generating units (SOGUs) at the same time. This paper proposes the cultured differential computation algorithm (CDCA) to solve this problem. The cultural algorithm (CA) used in the CDCA extracts and saves the domain knowledge or problem properties during the evolution process. The differential computation of the CDCA provides fast converging characteristics in searching the optimal solution through operations of mutation, crossover, and selection operations which are efficient and different from the existing generic algorithm (GA). To verify feasibility of the proposed method, the paper employs the real data obtained from a large optoelectronics factory in Taiwan. In comparison with the existing optimization methods, the proposed CDCA approach has superior results as revealed in the numerical results in terms of the computation time needed and the quality of solution obtained.
机译:考虑到公用事业的电费支出和自有发电机组(SOGU)的成本,合同规定的容量设置是一个离散的非线性优化问题。本文提出了一种文化差分计算算法(CDCA)来解决这个问题。 CDCA中使用的文化算法(CA)在进化过程中提取并保存领域知识或问题属性。 CDCA的差分计算通过有效,不同于现有通用算法(GA)的变异,交叉和选择运算,在寻找最佳解的过程中提供了快速收敛的特性。为了验证该方法的可行性,本文采用从台湾一家大型光电工厂获得的真实数据。与现有的优化方法相比,所提出的CDCA方法在所需的计算时间和获得的解决方案的质量方面,在数值结果中显示出更好的结果。

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