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High-Precision Automatic Calibration Modeling of Point Light Source Tracking Systems

机译:点光源跟踪系统的高精度自动校准建模

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摘要

To realize high-precision and high-frequency unattended site calibration and detection of satellites, automatic direction adjustment must be implemented in mirror arrays. This paper proposes a high-precision automatic calibration model based on a novel point light source tracking system for mirror arrays. A camera automatically observes the solar vector, and an observation equation coupling the image space and local coordinate systems is established. High-precision calibration of the system is realized through geometric error calculation of multipoint observation data. Moreover, model error analysis and solar tracking verification experiments are conducted. The standard deviations of the pitch angle and azimuth angle errors are 0.0176° and 0.0305°, respectively. The root mean square errors of the image centroid contrast are 2.0995 and 0.8689 pixels along the x- and y-axes, respectively. The corresponding pixel angular resolution errors are 0.0377° and 0.0144°, and the comprehensive angle resolution error is 0.0403°. The calculated model values are consistent with the measured data, validating the model. The proposed point light source tracking system can satisfy the requirements of high-resolution, high-precision, high-frequency on-orbit satellite radiometric calibration and modulation transfer function detection.
机译:为了实现高精度和高频无人看管的站点校准和检测卫星,必须在镜子阵列中实现自动化方向调节。本文提出了一种基于镜像阵列新型点光源跟踪系统的高精度自动校准模型。相机自动观察到太阳矢量,并且建立了观察方程耦合图像空间和局部坐标系。通过多点观测数据的几何误差计算实现系统的高精度校准。此外,进行了模型误差分析和太阳能跟踪验证实验。俯仰角和方位角误差的标准偏差分别为0.0176°和0.0305°。图像质心对比的根均方误差分别是沿X和Y轴的2.0995和0.8689像素。相应的像素角分辨率误差为0.0377°且0.0144°,综合角度分辨率误差为0.0403°。计算的模型值与测量数据一致,验证模型。所提出的点光源跟踪系统可以满足高分辨率,高精度,高频轨道卫星校准和调制传递函数检测的要求。

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