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Interacting multiple model methods in target tracking: a survey

机译:在目标跟踪中交互多种模型方法:一项调查

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The Interacting Multiple Model (IMM) estimator is a suboptimal hybrid filter that has been shown to be one of the most cost-effective hybrid state estimation schemes. The main feature of this algorithm is its ability to estimate the state of a dynamic system with several behavior modes which can "switch" from one to another. In particular, the IMM estimator can be a self-adjusting variable-bandwidth filter, which makes it natural for tracking maneuvering targets. The importance of this approach is that it is the best compromise available currently-between complexity and performance: its computational requirements are nearly linear in the size of the problem (number of models) while its performance is almost the same as that of an algorithm with quadratic complexity. The objective of this work is to survey and put in perspective the existing IMM methods for target tracking problems. Special attention is given to the assumptions underlying each algorithm and its applicability to various situations.
机译:交互多模型(IMM)估计器是次优混合滤波器,已被证明是最具成本效益的混合状态估计方案之一。该算法的主要特征是它能够估计具有几种行为模式的动态系统状态的能力,这些行为模式可以从一个“切换”到另一个。特别地,IMM估计器可以是自调节可变带宽滤波器,这使其自然地跟踪机动目标。这种方法的重要性在于,它是目前在复杂性和性能之间的最佳折衷方案:在问题的大小(模型数量)上,其计算要求几乎是线性的,而其性能与具有以下特征的算法的性能几乎相同:二次复杂度。这项工作的目的是调查和透视针对目标跟踪问题的现有IMM方法。特别注意每种算法的基础假设及其在各种情况下的适用性。

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