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A novel track-before-detect algorithm based on optimal nonlinear filtering for detecting and tracking infrared dim target

机译:一种基于最优非线性滤波的探测前跟踪算法,用于红外微弱目标的检测与跟踪

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摘要

Aiming at the nonlinear and non-Gaussian features of the real infrared scenes, an optimal nonlinear filtering based algorithm for the infrared dim target tracking-before-detecting application is proposed. It uses the nonlinear theory to construct the state and observation models and uses the spectral separation scheme based Wiener chaos expansion method to resolve the stochastic differential equation of the constructed models. In order to improve computation efficiency, the most time-consuming operations independent of observation data are processed on the fore observation stage. The other observation data related rapid computations are implemented subsequently. Simulation results show that the algorithm possesses excellent detection performance and is more suitable for real-time processing.
机译:针对真实红外场景的非线性和非高斯特征,提出了一种基于最优非线性滤波的红外暗淡目标检测前跟踪算法。它使用非线性理论构造状态和观测模型,并使用基于谱分离方案的维纳混沌扩展方法来求解所构造模型的随机微分方程。为了提高计算效率,在最前面的观察台上处理了与观察数据无关的最耗时的操作。随后执行与其他观测数据有关的快速计算。仿真结果表明,该算法具有良好的检测性能,更适合实时处理。

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