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Non-parametric method for separating domestic hot water heating spikes and space heating

机译:分离生活热水加热尖峰和空间加热的非参数方法

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摘要

In this paper a method for separating spikes from a noisy data series, where the data change and evolve over time, is presented. The method is applied on measurements of the total heat load for a single family house. It relies on the fact that the domestic hot water heating is a process generating short-lived spikes in the time series, while the space heating changes in slower patterns during the day dependent on the climate and user behavior. The challenge is to separate the domestic hot water heating spikes from the space heating without affecting the natural noise in the space heating measurements. The assumption behind the developed method is that the space heating can be estimated by a non-parametric kernel smoother, such that every value significantly above this kernel smoother estimate is identified as a domestic hot water heating spike. First, it is showed how a basic kernel smoothing approach is too simple to deliver reliable results. Therefore the problem is generalized to a local least squares problem, which makes it possible to design a robust kernel smoother, which estimate is not affected by the spikes. Furthermore, the generalized model makes it possible to estimate higher order local polynomials. Finally, the results are evaluated and it is found that the method is capable of calculating a reliable separation of the total heat load into the two components.
机译:在本文中,提出了一种从噪声数据序列中分离尖峰的方法,数据随时间变化和发展。该方法适用于单户住宅的总热负荷的测量。它依赖于这样一个事实,即家用热水加热是一个在时间序列中产生短时峰值的过程,而空间加热在一天中的缓慢变化取决于气候和用户行为。面临的挑战是在不影响空间采暖测量中的自然噪声的情况下,将家用热水采暖尖峰与空间采暖分开。所开发方法背后的假设是,可以通过非参数核平滑器来估算空间加热,从而将大大高于该核平滑器估计值的每个值识别为家用热水峰值。首先,它显示了基本的内核平滑方法如何太简单而无法提供可靠的结果。因此,该问题被普遍化为局部最小二乘问题,这使得可以设计鲁棒的内核平滑器,该估计值不受峰值影响。此外,通用模型使得可以估计高阶局部多项式。最后,对结果进行评估,发现该方法能够计算出将总热负荷分为两个部分的可靠分离。

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