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An efficient primary-segmented backup scheme for dependable real-time communication in multihop networks

机译:一种高效的主段备份方案,用于多跳网络中的可靠实时通信

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Several distributed real-time applications (e.g., medical imaging, air traffic control, video conferencing) demand hard guarantees on the message delivery latency and the recovery delay from component failures. As these demands cannot be met in traditional datagram services, special schemes have been proposed to provide timely recovery for real-time communications in multihop networks. These schemes reserve additional network resources (spare resources) a priori along a backup channel that is disjoint with the primary. Upon a failure in the primary channel, its backup is activated, making the real-time connection dependable. We propose a new backup method, called segmented backups, in which backup paths are provided for partial segments of the primary path rather than for its entire length, as is done in the existing schemes. We show that our method offers: 1) improved network resource utilization; 2) higher average call acceptance rate; 3) better quality-of-service guarantees on propagation delays and failure-recovery times; 4) increased flexibility to control the level of fault tolerance of each connection separately. We provide an algorithm for routing the segmented backups and prove its optimality with respect to spare resource reservation. We detail necessary extensions to resource reservation protocol (RSVP) to support our scheme and argue that they increase the implementation complexity of RSVP minimally. Our simulation studies on various network topologies demonstrate that spare resource aggregation methods, such as backup multiplexing, are more effective when applied to our scheme than to earlier schemes.
机译:几个分布式实时应用程序(例如,医学成像,空中交通管制,视频会议)要求对消息传递延迟和组件故障的恢复延迟进行严格保证。由于传统数据报服务无法满足这些需求,因此提出了特殊的方案来为多跳网络中的实时通信提供及时的恢复。这些方案沿与主节点不相交的备份通道先验地保留了其他网络资源(备用资源)。主通道发生故障时,将激活其备份,从而使实时连接可靠。我们提出了一种新的备份方法,称为分段备份,该备份方法是为主要路径的部分段而不是其整个长度提供备份路径,就像在现有方案中所做的那样。我们证明了我们的方法可以提供:1)改善网络资源利用率; 2)更高的平均呼叫接受率; 3)对传播延迟和故障恢复时间的更好的服务质量保证; 4)增加了灵活性,可以分别控制每个连接的容错级别。我们提供了一种路由分段备份的算法,并证明了其在备用资源保留方面的最优性。我们详述了对资源保留协议(RSVP)的必要扩展以支持我们的方案,并认为它们最小程度地增加了RSVP的实现复杂性。我们对各种网络拓扑的仿真研究表明,备用资源聚合方法(如备份多路复用)在应用于我们的方案时比对早期方案更有效。

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