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首页> 外文期刊>International Journal of Electrical Power & Energy Systems >Action dependent heuristic dynamic programming for home energy resource scheduling
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Action dependent heuristic dynamic programming for home energy resource scheduling

机译:基于动作的启发式动态规划用于家庭能源调度

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Energy management in smart home environment is nowadays a crucial aspect on which technologies have been focusing on in order to save costs and minimize energy waste. This goal can be reached by means of an energy resource scheduling strategy provided by a suitable optimization technique. The proposed solution involves a class of Adaptive Critic Designs (ACDs) called Action Dependent Heuristic Dynamic Programming (ADHDP) that uses two neural networks, namely the Action and the Critic Network. This scheme is able to minimize a given Utility Function over a certain time horizon. In order to increase the performances of the ADHDP algorithm, suitable Particle Swarm Optimization (PSO) based procedures are used to pretrain the weights of the Action and the Critic networks. The results provided by PSO techniques and by a non-optimal baseline approach are also used as elements of comparison. Computer simulations have been carried out in different residential scenarios. An historical data set for solar irradiation has been used to simulate the behavior of a photovoltaic array to obtain renewable energy and the main grid is used to supply the load and charge the battery when necessary. The results confirm that the ADHDP is able to reduce the overall energy cost with respect to the baseline solution and the PSO techniques. Moreover, the validity of this method has also been shown in a more realistic context where only forecasted values of solar irradiation and electricity price can be used.
机译:如今,智能家居环境中的能源管理已成为技术的关键方面,以节省成本和最大程度地减少能源浪费。可以通过适当的优化技术提供的能源调度策略来实现此目标。所提出的解决方案涉及一类称为动作相关启发式动态规划(ADHDP)的自适应批评设计(ACD),该设计使用两个神经网络,即动作和批评网络。该方案能够在一定时间范围内最小化给定的效用函数。为了提高ADHDP算法的性能,基于适当的粒子群优化(PSO)的过程用于预训练动作和评论网络的权重。由PSO技术和非最佳基准方法提供的结果也用作比较的要素。在不同的住宅场景中进行了计算机模拟。用于太阳辐射的历史数据集已用于模拟光伏阵列的行为以获得可再生能源,并且在必要时使用主电网为负载供电并为电池充电。结果证实,相对于基线解决方案和PSO技术,ADHDP能够降低总体能源成本。此外,这种方法的有效性也已经在更现实的情况下得到了证明,在这种情况下,只能使用太阳辐射的预测值和电价。

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