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首页> 外文期刊>Wireless Communications, IEEE Transactions on >Maximizing Gathered Samples in Wireless Sensor Networks with Slepian-Wolf Coding
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Maximizing Gathered Samples in Wireless Sensor Networks with Slepian-Wolf Coding

机译:使用Slepian-Wolf编码最大化无线传感器网络中的聚集样本

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boldmath We consider an energy constrained wireless sensor network, with arbitrary number of nodes, where source nodes utilize Slepian-Wolf (SW) coding before transmission to a joint decoder. We investigate optimal and near-optimal SW coding rates, transmit powers, and transmit durations that maximize the number of collected samples during the network lifetime, subject to channel capacity, SW rate region, and residual energy constraints. We find optimal (near-optimal) closed-form solutions in the absence (presence) of an energy constraint at the joint decoder. We take into account the energy consumption of SW encoding and decoding and communication circuitry. Numerical results demonstrate the effectiveness of the proposed optimization, especially when the joint decoder is not energy constrained.
机译:我们考虑了能量受限的无线传感器网络,该网络具有任意数量的节点,其中源节点在传输到联合解码器之前使用Slepian-Wolf(SW)编码。我们研究了最佳和接近最优的SW编码速率,发射功率和发射持续时间,这些时间会在网络寿命期间(取决于信道容量,SW速率区域和残余能量约束)来最大化收集的样本数量。我们在联合解码器上在没有能量约束的情况下找到了最佳(接近最优)的闭式解。我们考虑了软件编解码和通信电路的能耗。数值结果证明了所提出优化的有效性,特别是当联合解码器不受能量限制时。

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