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Space-Efficient Fault-Containment in Dynamic Networks

机译:动态网络中节省空间的故障遏制

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Bounding the impact of transient small-scale faults by self-stabilizing protocols has been pursued with independent objectives: Optimizing the system's reaction upon topological changes (e.g. super-stabilization), and reducing system recovery time from memory corruptions (e.g. fault-containment). Even though transformations adding either super-stabilization or fault-containment to existing protocols exist, none of them preserves the other. This paper makes a first attempt to combine both objectives. We provide a transformation adding fault-containment to silent self-stabilizing protocols while simultaneously preserving the property of self-stabilization and the protocol's behavior in face of topological changes. In particular, the protocol's response to a topology change remains unchanged even if a memory corruption occurs in parallel to the topology change. The presented transformation increases the memory footprint only by a factor of 4 and adds O(1) bits per edge. All previously known transformations for fault-containing self-stabilization increase the memory footprint by a factor of 2m.
机译:已经通过独立目标追求通过自稳定协议来限制瞬态小规模故障的影响:优化系统对拓扑变化的反应(例如超级稳定),并减少系统从内存损坏中恢复的时间(例如故障遏制)。即使存在向现有协议中添加超稳定或故障遏制的转换,但它们都不保留其他协议。本文首次尝试结合这两个目标。我们提供了一种在静默自稳定协议中增加故障约束的转换,同时保留了自稳定的特性以及该协议在拓扑变化时的行为。尤其是,即使内存损坏与拓扑更改并行发生,协议对拓扑更改的响应也保持不变。提出的转换仅将内存占用量增加了4倍,并且每个边缘增加了O(1)位。用于包含故障的自稳定的所有以前已知的转换将内存占用量增加了2m / n。

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