G-SINC:网络时钟的全球同步基础设施

Marc Frei, Jonghoon Kwon, Seyedali Tabaeiaghdaei, Marc Wyss, C. Lenzen, A. Perrig
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引用次数: 1

摘要

许多关键的计算应用程序依赖于安全可靠的时间,这些时间在大型分布式系统之间可靠地同步。今天的时间同步体系结构通常基于全球导航卫星系统,面临停机、故障或针对可用性和准确性的攻击的相当大的风险。本文描述了一种新的全局拜占庭容错时钟同步方法的实际实例,该方法不信任任何单个实体,并且能够容忍一小部分故障实体,同时仍然在全局范围内保持主权网络拓扑之间的同步。利用路径感知的SCION网络架构提供的强大弹性和安全属性,本文提出的设计可以作为向后兼容的活动备用解决方案来实现,用于现有的时间同步部署。通过广泛的评估,我们证明了超过94%的时间服务器在存在高达20%的恶意节点的情况下可靠地将其本地时钟的偏移量降至实时,并且即使在参考时钟中断一年后,所有时间服务器仍以仅2毫秒的偏差保持同步。
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G-SINC: Global Synchronization Infrastructure for Network Clocks
Many critical computing applications rely on secure and dependable time which is reliably synchronized across large distributed systems. Today's time synchronization architectures are commonly based on global navigation satellite systems at the considerable risk of being exposed to outages, malfunction, or attacks against availability and accuracy. This paper describes a practical instantiation of a new global, Byzantine fault-tolerant clock synchronization approach that does not place trust in any single entity and is able to tolerate a fraction of faulty entities while still maintaining synchronization on a global scale among otherwise sovereign network topologies. Leveraging strong resilience and security properties provided by the path-aware SCION networking architecture, the presented design can be implemented as a backward compatible active standby solution for existing time synchronization deployments. Through extensive evaluation, we demonstrate that over 94 % of time servers reliably minimize the offset of their local clocks to real-time in the presence of up to 20 % malicious nodes, and all time servers remain synchronized with a skew of only 2 ms even after one year of reference clock outage.
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