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首页> 外文期刊>Journal of ambient intelligence and humanized computing >Hybrid meta-heuristic optimization based home energy management system in smart grid
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Hybrid meta-heuristic optimization based home energy management system in smart grid

机译:智能电网中基于混合元启发式优化的家庭能源管理系统

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摘要

The emergence of the smart grid has empowered the consumers to manage the home energy in an efficient and effective manner. In this regard, home energy management (HEM) is a challenging task that requires efficient scheduling of smart appliances to optimize energy consumption. In this paper, we proposed a meta-heuristic based HEM system (HEMS) by incorporating the enhanced differential evolution (EDE) and harmony search algorithm (HSA). Moreover, to optimize the energy consumption, a hybridization based on HSA and EDE operators is performed. Further, multiple knapsacks are used to ensure that the load demand for electricity consumers does not exceed a threshold during peak hours. To achieve multiple objectives at the same time, hybridization proved to be effective in terms of electricity cost and peak to average ratio (PAR) reduction. The performance of the proposed technique; harmony EDE (HEDE) is evaluated via extensive simulations in MATLAB. The simulations are performed for a residential complex of multiple homes with a variety of smart appliances. The simulation results show that EDE performs better in terms of cost reduction as compared to HSA. Whereas, in terms of PAR, HSA is proved to be more efficient as compared to EDE. However, the proposed scheme outperforms the existing meta-heuristic techniques (HSA and EDE) in terms of cost and PAR.
机译:智能电网的出现使消费者能够以高效,有效的方式管理家庭能源。在这方面,家庭能源管理(HEM)是一项具有挑战性的任务,需要高效调度智能设备以优化能耗。在本文中,我们通过结合增强的差分演化(EDE)和和声搜索算法(HSA)提出了一种基于元启发式的HEM系统(HEMS)。此外,为了优化能耗,执行了基于HSA和EDE运算符的混合。此外,使用多个背包来确保用电人员的负荷需求在高峰时段不超过阈值。为了同时实现多个目标,在电力成本和峰均比(PAR)降低方面,杂交被证明是有效的。拟议技术的性能;通过在MATLAB中进行广泛的仿真来评估和声EDE(HEDE)。针对具有各种智能设备的多个家庭的住宅小区执行仿真。仿真结果表明,与HSA相比,EDE在降低成本方面表现更好。而就PAR而言,HSA被证明比EDE更有效。但是,在成本和PAR方面,拟议的方案优于现有的元启发式技术(HSA和EDE)。

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