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Energy-Driven Distribution of Signal Processing Applications across Wireless Sensor Networks

机译:能源驱动的无线传感器网络中信号处理应用的分配

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Wireless sensor network (WSN) applications have been studied extensively in recent years. Such applications involve resource-limited embedded sensor nodes that have small size and low power requirements. Based on the need for extended network lifetimes in WSNs in terms of energy use, the energy efficiency of computation and communication operations in the sensor nodes becomes critical. Digital Signal Processing (DSP) applications typically require intensive data processing operations and as a result are difficult to implement directly in resource-limited WSNs. In this article, we present a novel design methodology for modeling and implementing computationally intensive DSP applications applied to wireless sensor networks. This methodology explores efficient modeling techniques for DSP applications, including data sensing and processing; derives formulations of Energy-Driven Partitioning (EDP) for distributing such applications across wireless sensor networks; and develops efficient heuristic algorithms for finding partitioning results that maximize the network lifetime. To address such an energy-driven partitioning problem, this article provides a new way of aggregating data and reducing communication traffic among nodes based on application analysis. By considering low data token delivery points and the distribution of computation in the application, our approach finds energy-efficient trade-offs between data communication and computation.
机译:近年来,对无线传感器网络(WSN)应用进行了广泛的研究。这样的应用涉及资源有限的嵌入式传感器节点,该节点尺寸小且功耗低。基于在能源使用方面需要延长WSN中的网络寿命,传感器节点中计算和通信操作的能效变得至关重要。数字信号处理(DSP)应用通​​常需要大量的数据处理操作,因此很难直接在资源受限的WSN中实现。在本文中,我们提出了一种新颖的设计方法,用于建模和实现应用于无线传感器网络的计算密集型DSP应用。该方法论探索了用于DSP应用的有效建模技术,包括数据检测和处理;推导出能量驱动分区(EDP)的公式,以在无线传感器网络中分布此类应用;并开发了有效的启发式算法来查找可最大化网络寿命的分区结果。为了解决这种能源驱动的分区问题,本文提供了一种基于应用程序分析聚合数据并减少节点之间通信流量的新方法。通过考虑低数据令牌交付点和应用程序中的计算分布,我们的方法找到了数据通信与计算之间的节能折衷方案。

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