XNV:可解释网络验证

IF 3 3区 计算机科学 Q2 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE IEEE/ACM Transactions on Networking Pub Date : 2024-09-16 DOI:10.1109/TNET.2024.3456124
Fuliang Li;Minglong Li;Yunhang Pu;Yuxin Zhang;Xingwei Wang;Jiannong Cao
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引用次数: 0

摘要

网络验证最近取得了长足的进步,主要集中在配置和策略的可满足性或其方法的性能和多功能性上。然而,它们通常忽略了可解释性,即解释网络违反或满足某种转发策略的能力。本文提出了一种可解释网络验证框架XNV,该框架采用一种新颖的可解释故障分析方法,利用知识图(KG)构造有效的可解释网络验证器。XNV提供适当的解释,帮助操作人员了解验证结果,提高验证系统的透明度和可信度。首先,XNV使用KG作为配置语义级别的中间表示,存储配置语义和路由协议状态。然后,构建策略的人-逻辑故障树,并基于KG查询和最小割集匹配实现策略违规的根本原因分析。实验和案例评估表明,我们的系统在平衡性能、加速理解和处理错误配置的同时提供了良好的可解释性。
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XNV: Explainable Network Verification
Network verification has recently made strides, focusing on the satisfiability of configurations and policies or the performance and versatility of their methods. However, they generally ignore explainability, which is the ability to explain why a network violates or satisfies a certain forwarding policy. In this paper, we propose an explainable network verification framework XNV, which uses a novel interpretable fault analysis method to construct an effective explainable network verifier using knowledge graph (KG). XNV provides appropriate explanations to help operators understand the verification results, improving the transparency and trustworthiness of the verification system. First, XNV uses the KG as an intermediate representation of the configuration semantic level, storing the configuration semantics and routing protocol states. Then, XNV constructs human-logical fault trees for policies and implements root-cause analysis of policy violations based on KG queries and minimum cut set matching. Experiments and case evaluations show that our system provides good interpretability while balancing performance, accelerated understanding, and handling of misconfigurations.
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来源期刊
IEEE/ACM Transactions on Networking
IEEE/ACM Transactions on Networking 工程技术-电信学
CiteScore
8.20
自引率
5.40%
发文量
246
审稿时长
4-8 weeks
期刊介绍: The IEEE/ACM Transactions on Networking’s high-level objective is to publish high-quality, original research results derived from theoretical or experimental exploration of the area of communication/computer networking, covering all sorts of information transport networks over all sorts of physical layer technologies, both wireline (all kinds of guided media: e.g., copper, optical) and wireless (e.g., radio-frequency, acoustic (e.g., underwater), infra-red), or hybrids of these. The journal welcomes applied contributions reporting on novel experiences and experiments with actual systems.
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