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Reliability-Based Adaptive Distributed Classification in Wireless Sensor Networks

机译:无线传感器网络中基于可靠性的自适应分布式分类

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摘要

In many wireless sensor networks, local sensors adopt binary decisions because they can be transmitted to a fusion center using very low power. However, if a binary decision is wrong, the probability of the fusion center making a wrong final decision is dramatically increased. This study proposes a reliability-based adaptive method to resolve this problem with little extra computation. Before a sensor makes a binary local decision, its observation must be evaluated. Unreliable ranges are set for this evaluation. If the sensor's observation result does not fall within the unreliable range, the sensor makes a local decision. Otherwise, the sensor must make another observation. The optimal unreliable ranges are then derived. This study applies the proposed method to an existing distributed classification scheme using the binary decision. Performance analysis shows that this approach efficiently reduces the misclassification probability at the fusion center. Simulation results show that the transmission power is reduced by 7.5 dB to achieve a misclassification probability of 0.1 under some practical conditions.
机译:在许多无线传感器网络中,本地传感器采用二进制决策,因为它们可以使用非常低的功率传输到融合中心。但是,如果二元决策错误,则融合中心做出错误最终决策的可能性将大大增加。这项研究提出了一种基于可靠性的自适应方法,只需很少的额外计算即可解决此问题。在传感器做出二进制本地决策之前,必须先评估其观测。为该评估设置了不可靠的范围。如果传感器的观察结果不在不可靠的范围内,则由传感器做出本地决策。否则,传感器必须再次观察。然后得出最佳不可靠范围。这项研究将提出的方法应用于使用二元决策的现有分布式分类方案。性能分析表明,该方法可有效降低融合中心的误分类概率。仿真结果表明,在某些实际条件下,传输功率降低了7.5 dB,以实现误分类概率为0.1。

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