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首页> 外文期刊>Defence science journal >Input Estimation Algorithms for Reentry Vehicle Trajectory Estimation
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Input Estimation Algorithms for Reentry Vehicle Trajectory Estimation

机译:再入车辆轨迹估计的输入估计算法。

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Fast and accurate estimation of trajectory is important in tracking and intercepting reentry vehicles. Validating model is a real challenge associated with the qverall trajectory estimation problem. Input estimation technique provides a’solution to this challenge. Two input estimation algorithms were introduced based on different assumptions about the input applied to the model. This investigation presents approaches consisting of an extended Kahnan filter and two input estimation algorithms to identify the reentry vehicle trajectory in its terminal phase using data from a single radar source. Numerical simulations with data generated from two models demonstrate superior capabilities as measured by accuracy compared to the extended Kalman filter. Evaluation using real flight data provides the consistent results. The comparison between two input estimation algorithms is also presented. The trajectory estimation approaches based on two algorithms are effective in solving the reentry vehicle tracking problem.
机译:快速准确地估计轨迹对于跟踪和拦截再入车辆很重要。验证模型是与qverall轨迹估计问题相关的真正挑战。输入估算技术为解决这一难题提供了解决方案。基于关于应用于模型的输入的不同假设,引入了两种输入估计算法。这项研究提出了一种方法,该方法由扩展的Kahnan滤波器和两种输入估计算法组成,可使用来自单个雷达源的数据来识别进入末期的再入飞行器轨迹。使用两个模型生成的数据进行的数值模拟表明,与扩展的卡尔曼滤波器相比,按精度衡量,它具有出众的功能。使用实际飞行数据进行的评估可提供一致的结果。还介绍了两种输入估计算法之间的比较。基于两种算法的轨迹估计方法对于解决再入车辆跟踪问题是有效的。

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