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Efficient multi-category packet classification using TCAM

机译:使用TCAM有效的多类别数据包分类

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摘要

Packet classification is the base of various network functions such as firewall filtering, network intrusion detection and quality of services, etc. Ternary content addressable memory (TCAM) is widely employed in performing efficient packet classification. However, TCAM has some drawbacks, including limited capacity, high energy consumption, and incapability to store arbitrary ranges. Moreover, TCAM is only suitable for single-match packet classification natively, which is associated with one rule-set and reports one rule, for it only reports the first matching entry. However, except for single-match packet classification, another type of packet classification, multi-category packet classification, which is associated with multiple rule-sets and reports one matching rule for each rule-set, is also required in some scenarios, such as in the consolidation of multiple single-match network functions. The naive scheme performing multi-category packet classification with TCAM is to search a packet in multiple rule-sets one by one. Its performance decreases linearly as the number of rule-sets increases. To efficiently perform multi-category packet classification using TCAM, a novel scheme named REM is proposed in this paper. REM is based on the idea of reducing TCAM accesses per classification by merging rule-entry sets converted from rule-sets. The experiments show that compared with the naive scheme, REM can achieve 3x to 5x improvement on packet classification throughput, and reduce the energy consumption by 50% to 75%.
机译:分组分类是各种网络功能的基础,如防火墙滤波,网络入侵检测和服务质量等。三元内容可寻址存储器(TCAM)广泛用于执行有效的分组分类。然而,TCAM具有一些缺点,包括能力有限,能耗高,无法存储任意范围的能力。此外,TCAM仅适用于本地匹配的单匹配分组分类,该分类与一个规则集相关联,并报告一个规则,因为它仅报告第一个匹配条目。但是,除了单匹配分组分类,在某些情况下还需要另一种类型的分组分类,与多个规则集相关联的数据包分类,多类分组分类,并报告每个规则集的一个匹配规则,例如在整合多个单匹配网络功能。使用TCAM执行多类分组分类的天真方案是将多个规则集中的分组逐个搜索。随着规则集的数量增加,其性能线性降低。为了使用TCAM有效地执行多类分组分类,本文提出了一种名为REM的新颖方案。 REM是基于通过从规则集转换的规则输入集来减少每个分类的TCAM访问的想法。实验表明,与幼稚方案相比,REM可以实现3倍的分组分类通量提高,并将能耗降低50%至75%。

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