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An Indoor Localization Algorithm Based on Dynamic Measurement Compressive Sensing for Wireless Sensor Networks

机译:一种基于动态测量压缩感测的无线传感器网络的室内定位算法

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Indoor positioning is an important application of wireless sensor network. In order to improve the localization accuracy and fulfill the real-time requirement of localization in the large area, we propose an indoor localization algorithm based on dynamic measurement compressive sensing for wireless sensor network. The algorithm first builds a potential area that possesses the independent features with Bounding-Box method, which can decrease the number of meshing and reduce the dimension of measurement matrix. Given that only the anchor node that has a communication relationship with the unknown nodes can be used as the measuring node, we construct the dynamic measurement matrix so that the maximum number of measurement is associated with the number of grid. By this means, we can reduce the redundancy of the measurement, and improve the real-time feature of the algorithm. The simulation results indicate that the proposed algorithm can reduce the time complexity, while also ensuring the localization accuracy and efficiency.
机译:室内定位是无线传感器网络的重要应用。为了提高本地化准确性并满足大面积的定位实时要求,我们提出了一种基于无线传感器网络动态测量压缩感测的室内定位算法。该算法首先构建具有带边界盒方法的独立功能的潜在区域,这可以降低啮合的数量并降低测量矩阵的尺寸。鉴于只有具有与未知节点的通信关系的锚节点可以用作测量节点,我们构造动态测量矩阵,使得最大测量数与网格的数量相关联。通过这种方式,我们可以减少测量的冗余,并改善算法的实时特征。仿真结果表明,所提出的算法可以减少时间复杂度,同时还可以确保定位准确性和效率。

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