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Optimized Thermal Compensation Method Using Clustering and Drifted Response Stability for Total Power Radiometer Calibration

机译:用于总功率辐射计校准的聚类和漂移响应稳定性的优化热补偿方法

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摘要

Radiometer calibration using a compensation method based on temperature drift under a variety of environmental conditions can be used for airborne applications because of limitations on weight and power. Accordingly, the observation of the variation of the system states via analysis of the obtained response with temperature data is necessary to compensate the fluctuation of physical temperature for accurate calibration of the radiometer. However, the accuracy of the previous method (which uses one or more temperature probe) can rarely obtain an accurate estimated resu its accuracy is insufficient for high-precision measurement applications. Additionally, previous methods may cause unpredictable estimation errors when using regression methods with fewer measurable sensors. Therefore, more advanced compensation methods, which can compensate for the drift in radiometer output using temperature sensors (based on the analysis of the distinctive features of the temperature), are required to estimate the brightness temperature. In this paper, an optimized thermal compensation method using a selection of the optimal point for gain and offset probing to control the coefficients is analyzed using both the correlation-matrix-based hierarchical clustering and a comparison with the response stability for the training period. Then, the clustered temperature sensors of the radiometer system are used in the predictor variable to achieve optimum compensation of radiometer response variation. Next, the regression model of the multiple linear clustering method is compared the estimation accuracy for the selected training period and temperature sensors. Improved results relative to the reference method are achieved using the proposed model in experiments.
机译:由于对重量和功率的限制,使用基于温度漂移的基于温度漂移的补偿方法使用基于温度漂移的补偿方法进行辐射计校准。因此,必须通过分析获得温度数据的响应的分析来观察系统状态,以补偿物理温度的波动,以便精确校准辐射计。然而,先前方法(使用一个或多个温度探针)的准确性很少获得准确的估计结果;其精度不足以高精度测量应用。另外,在使用具有较少可测量传感器的回归方法时,之前的方法可能会导致不可预测的估计误差。因此,可以使用温度传感器补偿辐射计输出漂移的更先进的补偿方法(基于对温度的独特特征的分析),以估计亮度温度。在本文中,使用基于相关矩阵的分层聚类和与训练周期的响应稳定性的比较来分析使用用于控制系数的增益和偏移探测的最佳点的优化热补偿方法。然后,在预测器变量中使用辐射计系统的聚类温度传感器以实现辐射计响应变化的最佳补偿。接下来,将多个线性聚类方法的回归模型与所选训练周期和温度传感器进行比较估计精度。使用所提出的实验模型实现了相对于参考方法的改进的结果。

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