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首页> 外文期刊>Defence Science Journal >Predictive Missile Guidance with Online Trajectory Learning
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Predictive Missile Guidance with Online Trajectory Learning

机译:在线弹道学习的预测性导弹制导

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摘要

This study presents a predictive guidance scheme for tactical missiles. The modern day targets, with improved manoeuverability, have revealed insufficient performance of the conventional guidance laws. The underlying cause of this poor performance is the reactive nature of the conventional guidance laws such as proportional navigation (PN) and pure pursuit (PP). Predictive guidance offers an alternative approach to the classical methods by taking proactive actions by estimating target's future trajectory. However, most of the existing predictive guidance approaches assume that the interceptor have a model of the target dynamics. A guidance strategy is developed in this study, that can learn the target dynamics iteratively and adapt the interceptor actions accordingly. A recursive least squares (RLS) estimation algorithm is employed for learning and estimating the possible future target positions, and a fixed horizon nonlinear program is employed for selecting the optimal interception action. Monte-Carlo simulations show that the guidance algorithm introduced in this work demonstrates a significantly improved performance compared to the alternatives in terms of interception time and miss distance.
机译:这项研究提出了一种战术导弹的预测性制导方案。具有改进的机动性的现代目标显示出常规制导律的性能不足。这种不良性能的根本原因是常规制导律的反应性,例如比例导航(PN)和纯追击(PP)。预测性指导通过估计目标的未来轨迹采取主动行动,从而为经典方法提供了另一种方法。但是,大多数现有的预测制导方法都假定拦截器具有目标动力学模型。在这项研究中开发了一种指导策略,该策略可以迭代地学习目标动力学并相应地调整拦截器的动作。递归最小二乘(RLS)估计算法用于学习和估计可能的未来目标位置,固定水平非线性程序用于选择最佳拦截作用。蒙特卡洛模拟显示,与其他方法相比,这项工作中引入的制导算法在截取时间和未击中距离方面均表现出显着改善。

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