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Data compression in emitter location systems via sensor pairing and selection

机译:通过传感器配对和选择在发射器定位系统中进行数据压缩

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Data compression ideas can be extended to assess the data quality across multiple sensors to manage the network of sensors to optimize the location accuracy subject to communication constraints. From an unconstrained-resources viewpoint it is desirable to use the complete set of deployed sensors; however, that generally results in an excessive data volume. We have previously presented here results on selecting pre-paired sensors. We have now extended our results to enable optimal joint pairing/selection of sensors.rnPairing and selecting sensors to participate in sensing is crucial to satisfying trade-offs between accuracy and time-line requirements. We propose two methods that use Fisher information to determine sensor pairing/selection. The first method optimally determines pairings as well as selections of pairs but with the constraint that no sensors are shared between pairs. The second method allows sensors to be shared between pairs. In the first method, it is simple to evaluate the Fisher information but is challenging to make the optimal selections of sensors. However, the opposite is true in the second method: it is more challenging to evaluate the Fisher information but is simple to make the optimal selections of sensors.
机译:可以扩展数据压缩的思路,以评估多个传感器之间的数据质量,以管理传感器网络,以在通信约束下优化位置精度。从不受限制的资源的角度来看,最好使用整套部署的传感器。但是,这通常会导致过多的数据量。我们之前已经在这里介绍了选择预配对传感器的结果。现在,我们扩展了结果,以实现传感器的最佳联合配对/选择。配对和选择传感器以参与传感对于满足精度和时间要求之间的权衡至关重要。我们提出了两种使用Fisher信息确定传感器配对/选择的方法。第一种方法最佳地确定了配对以及对的选择,但是存在约束,即在对之间不共享传感器。第二种方法允许传感器在线对之间共享。在第一种方法中,评估Fisher信息很简单,但是对传感器的最佳选择提出了挑战。但是,第二种方法则相反:评估Fisher信息更具挑战性,但对传感器的最佳选择却很简单。

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