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Hyperplane-Based Vector Quantization for Distributed Estimation in Wireless Sensor Networks

机译:基于超平面的矢量量化在无线传感器网络中的分布式估计

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This paper considers distributed estimation of a vector parameter in the presence of zero-mean additive multivariate Gaussian noise in wireless sensor networks. Due to stringent power and bandwidth constraints, vector quantization is performed at each sensor to convert its local noisy vector observation into one bit of information, which is then forwarded to a fusion center where a final estimate of the vector parameter is obtained. Within such a context, this paper focuses on a class of hyperplane-based vector quantizers which linearly convert the observation vector into a scalar by using a compression vector and then carry out a scalar quantization. It is shown that the key of the vector quantization design is to find a compression vector for each sensor. Under the framework of the CramÉr–Rao bound (CRB) analysis, the compression vector design problem is formulated as an optimization problem that minimizes the trace of the CRB matrix. Such an optimization problem is extensively studied. In particular, an efficient iterative algorithm is developed for the general case, along with optimal and near-optimal solutions for some specific but important noise scenarios. Performance analysis and simulation results are carried out to illustrate the effectiveness of the proposed scheme.
机译:本文考虑在无线传感器网络中存在零均值加性多元高斯噪声的情况下矢量参数的分布式估计。由于功率和带宽的严格限制,在每个传感器上执行矢量量化,以将其局部噪声矢量观测值转换为一位信息,然后将其转发到融合中心,从中获得矢量参数的最终估计值。在这样的背景下,本文着重于一类基于超平面的矢量量化器,这些量化器通过使用压缩矢量将观察矢量线性转换为标量,然后进行标量量化。结果表明,矢量量化设计的关键是为每个传感器找到一个压缩矢量。在CramÉr-Rao界(CRB)分析的框架下,压缩矢量设计问题被表述为优化问题,该问题使CRB矩阵的痕迹最小化。对这种优化问题进行了广泛的研究。特别是,针对一般情况,开发了一种有效的迭代算法,以及针对某些特定但重要的噪声场景的最佳和接近最优的解决方案。性能分析和仿真结果表明了该方案的有效性。

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