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Level based sampling techniques for energy conservation in large scale wireless sensor networks.

机译:基于级别的采样技术,用于大规模无线传感器网络中的节能。

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摘要

As the size and node density of wireless sensor networks (WSN ) increase, the energy conservation problem becomes more critical and the conventional methods become inadequate. This dissertation addresses two different problems in large scale WSNs where all sensors are involved in monitoring, but the traditional practice of periodic transmissions of observations from all sensors would drain excessive amount of energy.;In the first problem, monitoring of the spatial distribution of a two dimensional correlated signal is considered using a large scale WSN . It is assumed that sensor observations are heavily affected by noise. We present an approach that is based on detecting contour lines of the signal distribution to estimate the spatial distribution of the signal without involving all sensors in the network. Energy efficient algorithms are proposed for detecting and tracking the temporal variation of the contours. Optimal contour levels that minimize the estimation error and a practical approach for selection of contour levels are explored. Performance of the proposed algorithm is explored with different types of contour levels and detection parameters.;In the second problem, a WSN is considered that performs health monitoring of equipment from a power substation. The monitoring applications require transmissions of sensor observations from all sensor nodes on a regular basis to the base station, which is very costly in terms of communication cost. To address this problem, an efficient sampling technique using level-crossings (LCS) is proposed. This technique saves communication cost by suppressing transmissions of data samples that do not convey much information. The performance and cost of LCS for several different level-selection schemes are investigated. The number of required levels and the maximum sampling period for practical implementation of LCS are studied. Finally, in an experimental implementation of LCS with MICAz mote, the performance and cost of LCS for temperature sensing with uniform, logarithmic and a combined version of uniform and logarithmically spaced levels are compared with that using periodic sampling.
机译:随着无线传感器网络(WSN)的规模和节点密度的增加,节能问题变得更加关键,常规方法也变得不足够。本文解决了所有传感器都参与监测的大规模无线传感器网络中的两个不同问题,但是传统的从所有传感器进行观测值周期性传输的做法会消耗过多的能量。在第一个问题中,监测卫星的空间分布使用大规模WSN可以考虑二维相关信号。假定传感器的观测值受到噪声的严重影响。我们提出一种方法,该方法基于检测信号分布的轮廓线以估计信号的空间分布,而无需涉及网络中的所有传感器。提出了一种节能算法,用于检测和跟踪轮廓的时间变化。探索使估计误差最小的最佳轮廓线和选择轮廓线的实用方法。在不同类型的轮廓线水平和检测参数的情况下,探索了该算法的性能。在第二个问题中,考虑了一种WSN来对变电站的设备进行健康监测。监视应用程序需要将传感器观测值从所有传感器节点定期传输到基站,这在通信成本方面非常昂贵。为了解决这个问题,提出了一种使用水平交叉(LCS)的有效采样技术。该技术通过抑制不传递太多信息的数据样本的传输来节省通信成本。研究了几种不同级别选择方案的LCS的性能和成本。研究了LCS实际实施所需的级别数和最大采样周期。最后,在具有MICAz微粒的LCS的实验实现中,将具有均匀,对数间距和均匀和对数间距水平组合形式的温度传感的LCS的性能和成本与使用定期采样的LCS的性能和成本进行了比较。

著录项

  • 作者

    Alasti, Hadi.;

  • 作者单位

    The University of North Carolina at Charlotte.;

  • 授予单位 The University of North Carolina at Charlotte.;
  • 学科 Engineering Electronics and Electrical.;Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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