海报摘要:有损无线传感器网络中的重构失真

U. Gunay, A. Abouzeid
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引用次数: 1

摘要

无线传感器网络可以监测各种物理现象。在本文中,我们考虑在空间和时间上连续且相关的现象的监测。传感器节点定期对这种现象进行采样,并使用路由树将测量结果传输到汇聚节点。汇聚节点利用收集到的样本在时间和空间上重构现象。由于数据在空间和时间上是连续的,因此只有当有无限数量的传感器连续监测感兴趣区域的每个点时,才有可能进行完美的重建。一个完美的重建还要求所有由节点产生的测量都被传送到接收器。所有这些要求实际上都是不可能的。因此,在本文中,我们考虑了这种现象在空间和时间上离散化的实际情况,并且由于各种原因,包括无线引起的数据包丢失,样本可能在穿越网络时丢失。这些因素造成了实际现象与重构现象之间的扭曲。我们将物理现象建模为高斯随机过程,并推导出固定丢包率下时间(时间失真)和空间(空间失真)的畸变表达式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Poster abstract: reconstruction distortion in lossy wireless sensor networks
Wireless sensor networks enable monitoring of various physical phenomena. In this paper, we consider the monitoring of a phenomenon that is continuous and correlated both in space and time. The sensor nodes periodically sample the phenomenon and transmit their measurements to a sink node using a routing tree. The sink node reconstructs the phenomenon in time and space using the samples it gathers. Because the data is spatially and temporally continuous, perfect reconstruction is only possible if there is an infinite number of sensors continuously monitoring every point in the area of interest. A perfect reconstruction also requires that all measurements produced by the nodes are delivered to the sink. All these requirements are practically impossible. Hence, in this paper, we consider the practical situation where the phenomenon is discretized spatially and temporally, and samples might be lost while they traverse the network due to a variety of reasons including wireless-induced packet losses. These factors cause distortion between the actual phenomenon and the reconstructed phenomenon. We model the physical phenomenon as a Gaussian stochastic process and derive expressions for distortion in time (temporal distortion) and space (spatial distortion) for a fixed packet loss rate.
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