基于范围的流量监测改进可编程网络中的流量分析

Christoph Hardegen
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引用次数: 1

摘要

流量监控允许获得聚合的网络流量视图,该视图可用于后续分析。由于基于流的流量分类或预测等网络管理任务受益于更广泛的数据视图,因此可以扩大用于导出所需流量元数据的流跟踪范围:首先,不仅可以在单向上下文中监控连贯的数据包流,还可以在双向上下文中监控相互关联的正向和反向视图。其次,这两种上下文的基于时间的子流管理将观察到的数据包流分离到覆盖特定部分的连续窗口中,以获得更高的数据粒度。为了支持这些多样化的流量视图,并结合需求驱动数据导出的可变特征集,为不同的流量分析任务服务,流量跟踪和导出策略需要以动态的方式运行。本文提出了一种流量监测方法,能够跟踪上述四个范围,同时适应基于超时的数据导出操作在可编程开关上。多级系统架构和自适应协议保证了数据记录的灵活共享和分析。评估表明,导出的数据可用于改进分析结果,因此所考虑的数据范围会影响实现的准确性,但也会影响监视开销。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Scope-based Flow Monitoring to Improve Traffic Analysis in Programmable Networks
Flow monitoring allows to obtain an aggregated network traffic view that can be leveraged for subsequent analysis. Since network management tasks like flow-based traffic classification or prediction benefit from broader data views, the flow tracking scope used to export required traffic metadata can be enlarged: First, coherent packet streams can not only be monitored in a unidirectional but also bidirectional context that combines interrelated forward and backward direction views. Second, time-based subflow management for both contexts separates observed packet streams into consecutive windows covering a particular fraction to gain higher data granularity. To support these diversified traffic views in combination with variable feature sets for demand-driven data export serving different traffic analysis tasks, flow tracking and export strategies are required to operate in a dynamic manner. This paper proposes a flow monitoring approach enabling to track the four aforementioned scopes while adapting timeout-based data export operating on programmable switches. A multi-level system architecture and an adaptive protocol ensure flexible sharing and analysis of data records. Evaluations show that exported data can be used to improve analysis outcomes, whereby the considered data scope affects achieved accuracy but also the monitoring overhead.
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