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Distributed Density Estimation Based on a Mixture of Factor Analyzers in a Sensor Network

机译:传感器网络中基于因子分析仪混合的分布式密度估计

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Distributed density estimation in sensor networks has received much attention due to its broad applicability. When encountering high-dimensional observations, a mixture of factor analyzers (MFA) is taken to replace mixture of Gaussians for describing the distributions of observations. In this paper, we study distributed density estimation based on a mixture of factor analyzers. Existing estimation algorithms of the MFA are for the centralized case, which are not suitable for distributed processing in sensor networks. We present distributed density estimation algorithms for the MFA and its extension, the mixture of Student’s t-factor analyzers (MtFA). We first define an objective function as the linear combination of local log-likelihoods. Then, we give the derivation process of the distributed estimation algorithms for the MFA and MtFA in details, respectively. In these algorithms, the local sufficient statistics (LSS) are calculated at first and diffused. Then, each node performs a linear combination of the received LSS from nodes in its neighborhood to obtain the combined sufficient statistics (CSS). Parameters of the MFA and the MtFA can be obtained by using the CSS. Finally, we evaluate the performance of these algorithms by numerical simulations and application example. Experimental results validate the promising performance of the proposed algorithms.
机译:传感器网络中的分布式密度估计由于其广泛的适用性而受到了广泛的关注。当遇到高维观测值时,将采用因子分析仪(MFA)的混合物来代替高斯混合物,以描述观测值的分布。在本文中,我们研究基于混合因子分析仪的分布式密度估计。 MFA的现有估计算法适用于集中式情况,不适用于传感器网络中的分布式处理。我们提供了MFA及其扩展(即学生的t因子分析仪(MtFA)的混合物)的分布式密度估计算法。我们首先将目标函数定义为局部对数似然的线性组合。然后,我们分别详细介绍了MFA和MtFA的分布式估计算法的推导过程。在这些算法中,首先计算并分散局部足够的统计量(LSS)。然后,每个节点执行从其附近节点接收的LSS的线性组合,以获得组合的充分统计信息(CSS)。可以通过CSS获取MFA和MtFA的参数。最后,我们通过数值仿真和应用实例评估了这些算法的性能。实验结果验证了所提出算法的良好性能。

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