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Self-Stabilization - A Mechanism to Make Networked Embedded Systems More Reliable?

机译:自稳定-一种使网络嵌入式系统更可靠的机制?

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The erratic behavior of wireless channels is still a major hurdle in the implementation of robust applications in wireless networks. In the past it has been argued that self-stabilization is a remedy to provide the needed robustness. This assumption has not been verified to the extent necessary to convince engineers implementing such applications. A major reason is that the time in which a self-stabilizing system returns to a valid state is unpredictable and potentially unbound. Failure rates typically depend on physical phenomena and in self-stabilizing systems each node tries to react to failures in an inherently adaptive fashion by the cyclic observation of its neighbors' states. When the frequency of state changes is too high, the system may never reach a state sufficiently stable for a specific task. In this paper we substantiate the conditions under which self-stabilization leads to fault tolerance in wireless networks and look at the myths about the power of self-stabilization as a particular instance of self-organization. We investigate the influences of the error rate and the neighbor state exchange rate on the stability and the convergence time on topology information acquired in real network experiments.
机译:无线信道的不稳定行为仍然是在无线网络中实现强大应用程序的主要障碍。在过去,有人提出自我稳定是提供所需鲁棒性的一种补救措施。该假设尚未得到证实以说服工程师实施此类应用程序。一个主要原因是自稳定系统返回到有效状态的时间是不可预测的,并且可能不受约束。故障率通常取决于物理现象,在自稳定系统中,每个节点都通过对邻居状态的周期性观察来尝试以固有的自适应方式对故障做出反应。当状态变化的频率太高时,系统可能永远无法达到对特定任务足够稳定的状态。在本文中,我们证实了自稳定导致无线网络中的容错的条件,并探讨了有关自稳定功能作为自组织特定实例的神话。我们研究了错误率和邻居状态交换率对在实际网络实验中获取的拓扑信息的稳定性和收敛时间的影响。

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