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Optimization of Rate Allocation with Distortion Guarantee in Sensor Networks

机译:传感器网络中具有失真保证的速率分配优化

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Lossy compression techniques are commonly used by long-term data-gathering applications that attempt to identify trends or other interesting patterns in an entire system since a data packet need not always be completely and immediately transmitted to the sink. In these applications, a nonterminal sensor node jointly encodes its own sensed data and the data received from its nearby nodes. The tendency for these nodes to have a high spatial correlation means that these data packets can be efficiently compressed together using a rate-distortion strategy. This paper addresses the optimal rate-distortion allocation problem, which determines an optimal bit rate of each sensor based on the target overall distortion to minimize the network transmission cost. We propose an analytically optimal rate-distortion allocation scheme, and we also extend it to a distributed version. Based on the presented allocation schemes, a greedy heuristic algorithm is proposed to build the most efficient data transmission structure to further reduce the transmission cost. The proposed methods were evaluated using simulations with real-world data sets. The simulation results indicate that the optimal allocation strategy can reduce the transmission cost to 6sim 15% of that for the uniform allocation scheme.
机译:有损压缩技术通常由长期的数据收集应用程序使用,这些应用程序试图识别整个系统中的趋势或其他有趣的模式,因为数据包不一定总是立即完整地传输到接收器。在这些应用中,非终端传感器节点联合编码其自身的感测数据和从其附近节点接收的数据。这些节点具有较高的空间相关性的趋势意味着可以使用速率失真策略将这些数据包有效地压缩在一起。本文讨论了最佳速率失真分配问题,该问题根据目标总体失真确定每个传感器的最佳比特率,以最大程度地降低网络传输成本。我们提出了一种解析最优的速率失真分配方案,并且还将其扩展到了分布式版本。基于提出的分配方案,提出了一种贪婪启发式算法,以建立最有效的数据传输结构,以进一步降低传输成本。使用具有真实数据集的模拟对提出的方法进行了评估。仿真结果表明,最优分配策略可以将传输成本降低到6sim的15%。

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