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Distributed LCMV beamforming in wireless sensor networks with node-specific desired signals

机译:具有特定于节点的所需信号的无线传感器网络中的分布式LCMV波束成形

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We consider distributed linearly constrained minimum variance (LCMV) beamforming in a wireless sensor network. Each node computes an LCMV beamformer with node-specific constraints, based on all sensor signals available in the network. A node has a local sensor array, and compresses its sensor signals to a signal with fewer channels, which is then shared with other nodes in the network. The compression rate depends inversely on the total number of linear constraints. Even though a significant compression is obtained, each node is able to generate the same outputs as a centralized LCMV beamformer, as if all sensor signals are available to every node. Since the distributed LCMV algorithm exploits a similar parametrization as previously developed distributed unconstrained MMSE signal estimation algorithms, it has similar dynamics and convergence properties. We provide simulation results to demonstrate the optimality and convergence of the algorithm.
机译:我们考虑无线传感器网络中的分布式线性约束最小方差(LCMV)波束成形。每个节点根据网络中所有可用的传感器信号,计算具有节点特定约束的LCMV波束成形器。节点具有本地传感器阵列,并将其传感器信号压缩为具有较少通道的信号,然后与网络中的其他节点共享。压缩率反过来取决于线性约束的总数。即使获得了显着的压缩,每个节点也能够生成与集中式LCMV波束形成器相同的输出,就好像每个节点都可以使用所有传感器信号一样。由于分布式LCMV算法利用与先前开发的分布式无约束MMSE信号估计算法相似的参数化,因此它具有相似的动态性和收敛性。我们提供了仿真结果,以证明该算法的最优性和收敛性。

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