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Variance estimation and ranking of Gaussian mixture distributions in target tracking applications

机译:目标跟踪应用中高斯混合分布的方差估计与排序

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Variance estimation and ranking methods are developed for stochastic processes modeled by Gaussian mixture distributions. It is shown that the variance estimate from a Gaussian mixture distribution has the same properties as a variance estimate from a single Gaussian distribution based on a reduced number of samples. Hence, well known tools of variance estimation and ranking of single Gaussian distributions can be applied to Gaussian mixture distributions. As an application example, optimization of sensor processing order in the sequential multi-target multi-sensor joint probabilistic data association algorithm is presented.
机译:开发了由高斯混合分布模型的随机过程开发了方差估计和排序方法。结果表明,来自高斯混合分布的差异估计与基于减少的样品数量的单个高斯分布的方差估计相同。因此,可以应用于高斯混合分布的众所周知的方差估计工具和单个高斯分布的排序。作为应用示例,呈现了顺序多目标多传感器联合概率数据关联算法中的传感器处理顺序的优化。

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