Differentiated Data Persistence with Priority Random Linear Codes

Yunfeng Lin, Baochun Li, B. Liang
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引用次数: 58

Abstract

Both peer-to-peer and sensor networks have the fundamental characteristics of node churn and failures. Peers in P2P networks are highly dynamic, whereas sensors are not dependable. As such, maintaining the persistence of periodically measured data in a scalable fashion has become a critical challenge in such systems, without the use of centralized servers. To better cope with node dynamics and failures, we propose priority random linear codes, as well as their affiliated pre-distribution protocols, to maintain measurement data in different priorities, such that critical data have a higher opportunity to survive node failures than data of less importance. A salient feature of priority random linear codes is the ability to partially recover more important subsets of the original data with higher priorities, when it is not feasible to recover all of them due to node dynamics. We present extensive analytical and experimental results to show the effectiveness of priority random linear codes.
基于优先级随机线性码的差分数据持久性
点对点网络和传感器网络都具有节点流失和故障的基本特征。P2P网络中的对等体是高度动态的,而传感器是不可靠的。因此,在不使用集中式服务器的情况下,以可伸缩的方式维护定期测量数据的持久性已成为此类系统中的一个关键挑战。为了更好地应对节点动态和故障,我们提出了优先级随机线性码及其相关的预分布协议,以保持不同优先级的测量数据,从而使关键数据比不太重要的数据有更高的机会在节点故障中幸存下来。优先级随机线性码的一个显著特征是,当由于节点动态的原因无法恢复所有原始数据时,能够部分恢复具有较高优先级的更重要的原始数据子集。我们提出了大量的分析和实验结果来证明优先随机线性码的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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