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Smart grid resources allocation using smart genetic heuristic

机译:使用智能遗传启发式智能网格资源分配

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摘要

In this paper, we propose a new smart genetic algorithm SGA-SG which allows Smart Grid Constituencies (SGC) such as Power Generators, Power Distributers, and Power Consumers to optimise their pay-offs. The proposed resource allocation algorithm connects real time power consumers to the best power distributers in terms of cost. SGA-SG algorithm is using the concept of genetic algorithm, smartly guided towards the solution by reducing the random walk effect of the classical genetic algorithm. Usually, smart grid systems are large scale systems (millions of customers). Hence, the design of the proposed SGA-SG algorithm takes into consideration the scale of the system in terms of memory and speed requirements to produce a good quality allocation within a reasonable time. SGA-SG algorithm is designed to quickly respond to any power failure on a real-time basis. Experimental results show that SGA-SG algorithm gives near optimal solution and reduces by 20% the overall cost of the smart grid constituencies compared to the traditional grid system.
机译:在本文中,我们提出了一种新的智能遗传算法SGA-SG,它允许智能电网组件(SGC),如发电机,电力分配器和功耗消费者来优化其降价。所提出的资源分配算法在成本方面将实时功率消耗器连接到最佳电力分配器。 SGA-SG算法正在使用遗传算法的概念,通过减少经典遗传算法的随机行走效应来巧妙地引导求助。通常,智能电网系统是大规模的系统(数百万客户)。因此,所提出的SGA-SG算法的设计考虑了在内存和速度要求方面的系统规模,以在合理的时间内产生良好的质量分配。 SGA-SG算法旨在实时响应任何电源故障。实验结果表明,与传统网格系统相比,SGA-SG算法提供了近最佳解决方案,并减少了智能电网选区的总成本20%。

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