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Star Centroiding Based on Fast Gaussian Fitting for Star Sensors

机译:基于快速高斯拟合的恒星恒星质心传感器。

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摘要

The most accurate star centroiding method for star sensors is the Gaussian fitting (GF) algorithm, because the intensity distribution of a star spot conforms to the Gaussian function, but the computational complexity of GF is too high for real-time applications. In this paper, we develop the fast Gaussian fitting method (FGF), which approximates the solution of the GF in a closed-form, thus significantly speeding up the GF algorithm. Based on the fast Gaussian fitting method, a novel star centroiding algorithm is proposed, which sequentially performs the FGF twice to calculate the star centroid: the first FGF step roughly calculates the Gaussian parameters of a star spot and the noise intensity of each pixel; subsequently the second FGF accurately calculates the star centroid utilizing the noise intensity provided in the first step. In this way, the proposed algorithm achieves both high accuracy and high efficiency. Both simulated star images and star sensor images are used to verify the performance of the algorithm. Experimental results show that the accuracy of the proposed algorithm is almost the same as the GF algorithm, higher than most existing centroiding algorithms, meanwhile, the proposed algorithm is about 15 times faster than the GF algorithm, making it suitable for real-time applications.
机译:对于恒星传感器而言,最精确的恒星质心重定位方法是高斯拟合(GF)算法,因为恒星点的强度分布符合高斯函数,但是GF的计算复杂性对于实时应用而言太高了。在本文中,我们开发了一种快速的高斯拟合方法(FGF),该方法可以近似地以闭合形式求解GF的解,从而显着加快了GF算法的速度。在快速高斯拟合方法的基础上,提出了一种新颖的恒星质心化算法,该算法依次执行两次FGF以计算恒星质心:FGF的第一步是粗略计算出一个星点的高斯参数和每个像素的噪声强度。随后,第二个FGF利用第一步中提供的噪声强度准确地计算出星形质心。这样,所提出的算法实现了高精度和高效率。模拟的恒星图像和恒星传感器图像均用于验证算法的性能。实验结果表明,该算法的精度与GF算法几乎相同,高于大多数现有的质心算法,同时,其算法比GF算法快15倍左右,适合实时应用。

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