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Distributed Field Reconstruction in Wireless Sensor Networks Based on Hybrid Shift-Invariant Spaces

机译:基于混合移位不变空间的无线传感器网络分布式场重构

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We use the theory and algorithms developed for so-called shift-invariant spaces to develop a novel distributed architecture for sampling and reconstructing time-varying non-bandlimited physical fields in wireless sensor networks. We introduce hybrid shift-invariant spaces that generalize conventional shift-invariant spaces and can adapt to local smoothness properties of the field. Using shift-invariant spaces with compactly supported generator functions allows us to split the global reconstruction into several smaller local problems that can be solved independently. Capitalizing on the sparsity of the matrices involved in the reconstruction, we propose direct and iterative reconstruction algorithms whose complexity per time slot scales only linearly with the number of sensor nodes. We furthermore analyze the impact of sensor localization errors on the mean square error of the reconstructed field. Numerical simulations illustrate that the proposed field reconstruction scheme performs close to bandlimited reconstruction and is less sensitive to sensor location errors while providing a significant reduction in computational complexity.
机译:我们使用针对所谓的移不变空间开发的理论和算法来开发一种新颖的分布式体系结构,用于对无线传感器网络中的时变非带限物理场进行采样和重构。我们介绍了混合位移不变空间,它推广了传统的位移不变空间,并且可以适应该场的局部平滑特性。通过将位移不变空间与紧凑支持的生成器函数一起使用,我们可以将全局重构分为几个可以独立解决的较小局部问题。利用重建中涉及的矩阵的稀疏性,我们提出了直接且迭代的重建算法,其每时隙的复杂度仅与传感器节点的数量成线性比例。我们进一步分析了传感器定位误差对重构场均方误差的影响。数值模拟表明,所提出的场重构方案执行的是接近带限重构,并且对传感器位置误差不太敏感,同时显着降低了计算复杂度。

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