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Correlation analysis and applications in wireless microsensor networks

机译:相关性分析及其在无线微传感器网络中的应用

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Sensor readings in a wireless microsensor network are correlated both spatially and temporally. Various coding and storage schemes and also other applications have been developed to exploit these correlations; therefore it is crucial to efficiently track the correlations. In this paper, a linear prediction algorithm is developed to initially establish the correlations, and the order of linear prediction has been derived from the prediction error power distribution. A tracking algorithm uses discrete Kalman filter to track the correlation once it is initially obtained. This Kalman filter based algorithm uses the gradient computed at each step as the input control vector. This approach is suitable for quantifying geographical spatial correlation and multimodality correlation. Experimental results using various data sets have shown that the proposed scheme can accurately obtain the correlation and consumes much less energy as compared to known schemes.
机译:无线微传感器网络中的传感器读数在空间和时间上都相关。已经开发出各种编码和存储方案以及其他应用来利用这些相关性。因此,有效跟踪相关性至关重要。本文开发了一种线性预测算法来初步建立相关性,并从预测误差功率分布中推导了线性预测的顺序。一旦最初获得相关性,跟踪算法便使用离散卡尔曼滤波器来跟踪相关性。这种基于卡尔曼滤波器的算法将在每个步骤中计算出的梯度用作输入控制向量。该方法适合于量化地理空间相关性和多峰相关性。使用各种数据集的实验结果表明,与已知方案相比,该方案可以准确地获得相关性,并且消耗的能量要少得多。

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