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AN IMPROVED RECURSIVE INTERACTING MULTI-MODEL ALGORITHM BASED ON GENETIC ALGORITHM

机译:基于遗传算法的改进递归交互多模型算法

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In traditional multi-model algorithm, the models' parameters are set in advance without any changes in the following calculating steps, sometimes these parameters are initialized randomly. In order to set the parameters more accurate, algorithm based on genetic algorithm (GA) is proposed. Combined with recursive interacting multi-model (RIMM) algorithm proposed by Leigh A. Johnston, the optimal searching ability of GA is used to identify the best model parameters in one searching period. The proposed method is applied to inertial navigation system (INS)/celestial navigation system (CNS)/GPS integrated navigation for missile. The experiment results exhibit satisfactory precision and searching velocity. By determining the models' parameters of the whole filtering adaptively, it reaches a balance between two incompatible goals: "rapid velocity" and "high precision".
机译:在传统的多模型算法中,模型的参数预先设置,在以下计算步骤中没有任何变化,有时会随机初始化这些参数。为了更准确地设置参数,提出了基于遗传算法(GA)的算法。结合Leigh A. Johnston提出的递归交互多模型(RIMM)算法,GA的最佳搜索能力用于在一个搜索周期中识别最佳模型参数。该方法应用于惯性导航系统(INS)/天体导航系统(CNS)/ GPS集成导弹。实验结果表现出令人满意的精度和搜索速度。通过自适应地确定整个过滤的模型'参数,它达到了两个不兼容的目标之间的平衡:“快速速度”和“高精度”。

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