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An integrated optimal estimation approach to Spitzer Space Telescope focal plane survey

机译:Spitzer Space Telescope Focal Plane Revely的集成最优估计方法

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This paper discusses an accurate and efficient method for focal plane survey that was used for the Spitzer Space Telescope. The approach is based on using a high-order 37-state Instrument Pointing Frame (IPF) Kalman filter that combines both engineering parameters and science parameters into a single filter formulation. In this approach, engineering parameters such as pointing alignments, thermomechanical drift and gyro drifts are estimated along with science parameters such as plate scales and optical distortions. This integrated approach has many advantages compared to estimating the engineering and science parameters separately. The resulting focal plane survey approach is applicable to a diverse range of science instruments such as imaging cameras, spectroscopy slits, and scanning-type arrays alike. The paper will summarize results from applying the IPF Kalman filter to calibrating the Spitzer Space Telescope focal plane, containing the MIPS, IRAC, and the IRS science instrument arrays.
机译:本文讨论了用于斯波特空间望远镜的焦平面调查准确和有效的方法。该方法是基于使用高阶37状态仪器指向帧(IPF)卡尔曼滤波器,该仪器将工程参数和科学参数组合成单个过滤器配方。在这种方法中,估计诸如指向对准,热机械漂移和陀螺漂移的工程参数以及平板尺度和光学扭曲等科学参数。与分别估计工程和科学参数相比,这种综合方法具有许多优点。由此产生的焦平面调查方法适用于多样化的科学仪器,例如成像相机,光谱狭缝和扫描型阵列。本文将总结应用IPF卡尔曼滤波器,以校准包含MIPS,IRAC和IRS科学仪器阵列的Spitzer Space望远镜焦平面。

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