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Power capacity profile estimation for building heating and cooling in demand-side management

机译:需求侧管理中建筑物采暖和制冷的功率曲线估计

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This paper presents a new methodology for the estimation of power capacity profiles for smart buildings. The capacity profile can be used within a demand-side management system in order to guide the building temperature operation. It provides a trade-off between the quality of service perceived by the end user and the requirements from the grid in a demand-response context. We use a data-fitting approach and a multiclass classifier to compute the required profile to run a set of electric heating and cooling units via an admission control module. Simulation results validate the performance of the proposed methodology under various conditions, and we compare our approach with neural networks in a real-world based scenario. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新的方法来估算智能建筑的电力容量分布。可以在需求侧管理系统中使用容量配置文件,以指导建筑物温度的运行。在需求响应上下文中,它在最终用户感知的服务质量和网格的需求之间进行了权衡。我们使用数据拟合方法和多类分类器来计算所需的配置文件,以通过进入控制模块运行一组电加热和冷却单元。仿真结果验证了所提出的方法在各种条件下的性能,并且在基于现实的场景中将我们的方法与神经网络进行了比较。 (C)2017 Elsevier Ltd.保留所有权利。

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