• 通过基于重要性采样蒙特卡罗模拟方法得到高斯分布近似未知状态变量验分布。

    A single Gaussian distribution is obtained to approximate the posterior distribution of state parameters based on sequential importance sampling and Monte Carlo methods.

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  • 结果表明,与普通随机采样相比拉丁几何体采样捕获更多不确定性,特别是蒙特卡罗模拟次数较少时。

    Results showed that Latin Hypercube sampling can capture more variability in the sample space than simple random sampling especially when the number of simulations is small.

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  • 讨论贯序蒙特卡罗方法无线传感器网络节点定位算法中的实现,并针对采样阶段样本缺失现象,基本算法进行了改进。

    Discuss the Sequential Monte Carlo localization method for wireless sensor networks scheme and modify the basic algorithm to overcome the sample degeneracy problem in resampling stage.

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  • 讨论贯序蒙特卡罗方法无线传感器网络节点定位算法中的实现,并针对采样阶段样本缺失现象,基本算法进行了改进。

    Discuss the Sequential Monte Carlo localization method for wireless sensor networks scheme and modify the basic algorithm to overcome the sample degeneracy problem in resampling stage.

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