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Packet Capture in 10-Gigabit Ethernet Environments Using Contemporary Commodity Hardware

机译:使用现代商品硬件在10 Gb以太网环境中捕获数据包

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Tracing traffic using commodity hardware in contemporary highspeed access or aggregation networks such as 10-Gigabit Ethernet is an increasingly common yet challenging task. In this paper we investigate if today's commodity hardware and software is in principle able to capture traffic from a fully loaded Ethernet. We find that this is only possible for data rates up to 1 Gi-gabit/s without reverting to using special hardware due to, e. g., limitations with the current PC buses. Therefore, we propose a novel way for monitoring higher speed interfaces (e. g., 10-Gigabit) by distributing their traffic across a set of lower speed interfaces (e.g., 1-Gigabit). This opens the next question: which system configuration is capable of monitoring one such 1-Gigabit/s interface? To answer this question we present a methodology for evaluating the performance impact of different system components including different CPU architectures and different operating system. Our results indicate that the combination of AMD Opteron with FreeBSD outperforms all others, independently of running in single- or multi-processor mode. Moreover, the impact of packet filtering, running multiple capturing applications, adding per packet analysis load, saving the captured packets to disk, and using 64-bit Oses is investigated.
机译:在当今的高速访问或聚合网络(例如10 Gb以太网)中使用商品硬件跟踪流量是一项日益普遍但具有挑战性的任务。在本文中,我们研究了当今的商用硬件和软件原则上是否能够捕获来自满载以太网的流量。我们发现,这仅适用于高达1 Gi-gabit / s的数据速率,而不会由于e等原因而恢复使用特殊硬件。例如,当前PC总线的局限性。因此,我们提出了一种通过在一组较低速接口(例如1-Gigabit)上分配其流量来监视高速接口(例如10Gigabit)的新颖方法。这就提出了下一个问题:哪种系统配置能够监视一个这样的1-Gigabit / s接口?为了回答这个问题,我们提出了一种评估不同系统组件(包括不同CPU体系结构和操作系统)对性能的影响的方法。我们的结果表明,与在单处理器或多处理器模式下运行无关,AMD Opteron与FreeBSD的结合优于其他所有。此外,研究了数据包筛选,运行多个捕获应用程序,增加每个数据包分析负载,将捕获的数据包保存到磁盘以及使用64位Oses的影响。

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