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Scaling data-plane logging in large scale networks

机译:在大规模网络中扩展数据平面日志记录

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Understanding and troubleshooting wide area networks (such as military backbone networks and ISP networks) are challenging tasks due to their large, distributed, and highly dynamic nature. Building a system that can record and replay fine-grained behaviors of such networks would simplify this problem by allowing operators to recreate the sequence and precise ordering of events (e.g., packet-level forwarding decisions, route changes, failures) taking place in their networks. However, doing this at large scales seems intractable due to the vast amount of information that would need to be logged. In this paper, we propose a scalable and reliable framework to monitor fine-grained data-plane behavior within a large network. We give a feasible architecture for a distributed logging facility, a tree-based data structure for log compression and show how this logged information helps network operators to detect and debug anomalous behavior of the network. Experimental results obtained through trace-driven simulations and Click software router experiments show that our design is lightweight in terms of processing time, memory requirement and control overhead, yet still achieves over 99% precision in capturing network events.
机译:了解广域网(例如,军事骨干网和ISP网络)并对其进行故障排除,因为它们具有庞大,分散且高度动态的特性,因此具有挑战性。建立一个可以记录和重放此类网络细粒度行为的系统,将允许运营商重新创建其网络中发生的事件的顺序和精确排序(例如,数据包级转发决策,路由更改,故障),从而简化此问题。 。但是,由于需要记录大量信息,因此大规模执行此操作似乎很棘手。在本文中,我们提出了一种可扩展且可靠的框架来监视大型网络中的细粒度数据平面行为。我们为分布式日志记录工具提供了一种可行的体系结构,一种用于日志压缩的基于树的数据结构,并显示了此日志记录的信息如何帮助网络运营商检测和调试网络的异常行为。通过跟踪驱动的仿真和Click软件路由器实验获得的实验结果表明,我们的设计在处理时间,内存需求和控制开销方面是轻量级的,但在捕获网络事件方面仍达到了99%以上的精度。

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