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Sensor Data Quality Assessment for Building Simulation Model Calibration Based on Automatic Differentiation

机译:基于自动分化的构建仿真模型校准的传感器数据质量评估

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Building simulation models play a vital role in optimal building climate control, energy audit, fault detection and diagnosis, continuous commissioning, and planning. Real system parameters are often unknown or partially unknown and need to be identified through historical data, which are currently acquired by heuristically designed experiments. Without quality sensor data, model calibration is prone to fail, even if the calibration algorithm is appropriate. In this paper, we propose a Fisher-information-matrix (FIM)-based metric to examine the sensor data measurements and how their quality is related to the model calibration quality. It aims to provide quantitative guidance in the calibration cycle of a whole building model that takes as many variables as possible into consideration for the sake of accuracy. Our concerned model is based on well-known physical laws and tries to avoid simplification, thereby leading to a highly discontinuous system with model switches due to the seasonal or daily variation and other reasons. Such a model is implemented in the form of a software package. Hence, no explicit mathematical expression can be given. A key technical challenge is that the complexity of the model prohibits the analytical derivation of FIM, while the numeric calculation is sensitive to sensor noise and model switches. We, hence, propose to adopt an automatic differentiation method, which exploits the operator overload feature of object oriented programming language, for robust numerical FIM calculation.
机译:建筑仿真模型在最佳建筑气候控制,能源审计,故障检测和诊断,连续调试和规划中发挥着至关重要的作用。实际系统参数通常是未知的或部分未知,需要通过历史数据来识别,该数据目前通过启发式设计的实验获得。如果没有质量传感器数据,即使校准算法适当,型号校准也会易于失败。在本文中,我们提出了一种用于基于Fisher-Informatix(FIM)的公制,以检查传感器数据测量以及其质量如何与模型校准质量相关。它旨在为整个建筑模型的校准周期提供定量指导,以便以尽可能多地考虑到尽可能多的变量。我们的有关模型基于众所周知的物理法律,并试图避免简化,从而导致由于季节性或日常变化和其他原因,具有模型交换机的高度不连续的系统。这种模型以软件包的形式实现。因此,可以给出明确的数学表达式。一个关键的技术挑战是模型的复杂性禁止FIM的分析推导,而数值计算对传感器噪声和型号交换机敏感。因此,我们建议采用自动差异化方法,该方法利用面向对象编程语言的操作员过载特征,用于鲁棒数值FIM计算。

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