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High Availability in Cyber-physical Systems by Self-determined Virtual Machine Replication

机译:自主虚拟机复制可在物理网络系统中实现高可用性

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Present approaches to high availability via virtual machine replication either rely on parallel VM-execution combined with a voting mechanism or periodically transfer state modifications to an inactive backup VM. While redundant execution is expensive in terms of CPU load, periodic checkpointing leads to higher network load and the response times of protected VMs increase and get more jitter. Both alternatives are unacceptable in domains with resource constraints and realtime requirements such as cyber-physical systems. In this work we present a “self-determined” virtual machine replication model for high availability solutions that avoids the drawbacks of both established techniques at the cost of transparency. We argue that for some emerging application domains, such as cyber-physical systems, our model is more suitable. Results show that high availability via self-determined replication can reduce response latencies by an order of magnitude when compared with its periodic counterpart. Especially when used in combination with a lightweight unikernel as guest OS, the overhead of high availability becomes acceptable, even for resource-constrained cyber-physical systems.
机译:当前通过虚拟机复制实现高可用性的方法要么依赖于并行VM执行并结合表决机制,要么定期将状态修改转移到不活动的备份VM。尽管就CPU负载而言,冗余执行的成本很高,但定期检查点会导致更高的网络负载,并且受保护的VM的响应时间会增加,并且会产生更大的抖动。在具有资源限制和实时要求的领域(例如,网络物理系统)中,这两种选择都是不可接受的。在这项工作中,我们提出了一种针对高可用性解决方案的“自定义”虚拟机复制模型,该模型以透明为代价避免了两种既有技术的缺点。我们认为,对于某些新兴的应用程序领域,例如网络物理系统,我们的模型更合适。结果表明,与周期性副本相比,通过自主复制实现的高可用性可以将响应延迟降低一个数量级。特别是当与轻量级的Unikernel作为来宾OS结合使用时,即使对于资源受限的电子物理系统,高可用性的开销也可以接受。

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