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Plume Noise Suppression Algorithm for Missile-Borne Star Sensor Based on Star Point Shape and Angular Distance between Stars

机译:基于星点形状和星际角距离的导弹-星型传感器羽流噪声抑制算法

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摘要

When a missile is launched, the plume generated by the propulsion system will produce a lot of fake stars in the star image, which will affect the normal work of the missile-borne star sensor. A plume noise suppression algorithm based on star point shape and angular distance between stars is proposed in this paper, which is a preprocessing algorithm for star identification. Firstly, principal component analysis is used to extract the shape features of star points. Secondly, the authenticity of star points is evaluated based on length-width ratios. Thirdly, in two consecutive frames of star images, according to the shape features of star points, the optimal matching window is determined to achieve accurate matching of the corresponding star points. Finally, the rapid elimination of fake stars is completed by the principle of invariant angular distance between true stars. Simulation experiment results show that the proposed algorithm is quite robust and fast, and the elimination ratio is high even if the number of fake stars reaches four times more than true stars. Compared with the existing star identification algorithms, when the number of fake stars is large, the advantage of the proposed algorithm is obvious. Experimentation on actual star images verifies that the proposed algorithm can meet the requirements of spacecraft even if there are a large number of fake stars in the star image.
机译:发射导弹时,推进系统产生的羽流将在恒星图像中产生大量假星,这将影响导弹载星传感器的正常工作。提出了一种基于恒星点形状和恒星角距离的羽状噪声抑制算法,它是恒星识别的一种预处理算法。首先,使用主成分分析提取星点的形状特征。其次,根据长宽比评估星点的真实性。第三,在两个连续的星形图像帧中,根据星形点的形状特征,确定最佳匹配窗口,以实现对相应星形点的精确匹配。最后,通过消除真实恒星之间角距不变的原理,可以快速消除假恒星。仿真实验结果表明,该算法鲁棒性强,速度快,即使伪星数量达到真星数量的四倍,消除率也很高。与现有恒星识别算法相比,当假星数量较大时,该算法的优点显而易见。对实际恒星图像的实验证明,即使恒星图像中存在大量假恒星,该算法也能满足航天器的要求。

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