无线传感器网络重编程的高效代码更新解决方案

B. Mazumder, J. Hallstrom
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引用次数: 11

摘要

我们提出了一种增量代码更新策略,用于有效地重新编程无线传感器节点。我们采用线性空间和二次时间算法(Hirschberg算法)来计算最大公共子序列,以构建指定编辑序列的编辑映射,将在传感器网络中运行的代码转换为新的代码图像。然后,我们提出了一种基于启发式的优化策略,用于有效的编辑脚本编码,以减少这种干扰。编辑地图大小。最后,我们给出了实验结果,以证明使用该机制重新编程网络时数据大小的减少。与完整的图像传输相比,该方法在简单的变化中实现了99.987%的减少,在更复杂的变化中实现了86.95%到94.58%的减少,从而显著降低了无线传感器网络重编程的能源成本。我们将结果与先前工作中描述的其他增量更新策略所实现的减少进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient code update solution for wireless sensor network reprogramming
We present an incremental code update strategy used to efficiently reprogram wireless sensor nodes. We adapt a linear space and quadratic time algorithm (Hirschberg's algorithm) for computing maximal common subsequences to build an edit map specifying an edit sequence, required to transform the code running in a sensor network to a new code image. We then present a heuristic-based optimization strategy for efficient edit script encoding to reduce th.e edit map size. Finally, we present experimental results to demonstrate the reduction in data size to reprogram a network using this mechanism. The approach achieves reductions of 99.987% for simple changes, and between 86.95% and 94.58% for more complex changes, compared to full image transmissions - leading to significantly lower energy costs for wireless sensor network reprogramming. We compare the results with reductions achieved by other incremental update strategies described in prior work.
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