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Comparative analysis of quality of service and memory usage for adaptive failure detectors in healthcare systems

机译:医疗系统自适应故障检测器的服务质量和内存使用情况的比较分析

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Failure detection (FD) is an important issue for supporting dependability in distributed healthcare systems to guarantee continuous, safe, secure, and dependable operation, and often is an important performance bottleneck in the event of node failure. FD can be used to manage the health status of communication for delivering telemedicine services, and then to help distributed healthcare system reduce fatal accident rate and increase the reliability and safety of systems. Ensuring acceptable quality of service (QoS) is made difficult by the relative unpredictability of the network environment. In this paper, first, we compare QoS metrics of several adaptive FDs, discuss their properties and their relation, and then propose one optimization over the existing methods, called tuning adaptive margin failure detector (TAM FD), which significantly improves QoS, especially in the aggressive range and when the network is unstable. Second, we address the problem of most adaptive schemes, namely their need for a large window of samples. So we also analyze the impact of memory size on the performance of FDs, and then prove that the presented scheme is designed to use a fixed and very limited amount of memory for the distributed system. Our experimental results over several kinds of networks (Cluster, WiFi, LAN, Intercontinental WAN) show that the properties of the existing adaptive failure detectors, and demonstrate that the optimization is reasonable and acceptable. Furthermore, the extensive experimental results show what is the effect of memory size on the overall QoS of each adaptive failure detector. For our TAM FD, the effect of window size on their QoS is very small and can be negligible.
机译:故障检测(FD)是支持分布式医疗系统中的可靠性以确保连续,安全,可靠和可靠运行的重要问题,并且通常是节点故障时的重要性能瓶颈。 FD可用于管理用于提供远程医疗服务的通信的健康状况,然后帮助分布式医疗保健系统降低致命事故率并提高系统的可靠性和安全性。由于网络环境的相对不可预测性,难以确保可接受的服务质量(QoS)。在本文中,我们首先比较了几种自适应FD的QoS指标,讨论了它们的特性和它们之间的关系,然后提出了对现有方法的一种优化,称为调整自适应余量故障检测器(TAM FD),它可以显着提高QoS,尤其是在激进范围和网络不稳定时。其次,我们解决了大多数自适应方案的问题,即它们需要大样本窗口。因此,我们还分析了内存大小对FD性能的影响,然后证明了该方案旨在为分布式系统使用固定且数量非常有限的内存。我们在多种网络(集群,WiFi,LAN,洲际WAN)上的实验结果表明,现有自适应故障检测器的特性,并表明优化是合理且可以接受的。此外,广泛的实验结果表明,存储器大小对每个自适应故障检测器的整体QoS有何影响。对于我们的TAM FD,窗口大小对其QoS的影响很小,可以忽略不计。

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