一个自我修复的生物程序模型

SSRS '03 Pub Date : 2003-10-31 DOI:10.1145/1036921.1036929
S. George, David E. Evans, Steven A. Marchette
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引用次数: 54

摘要

面对广泛变化的环境,生物系统表现出显著的适应性和鲁棒性。通过采用生物系统的特性,我们希望设计出即使在存在灾难性故障和大规模攻击的情况下也能充分运行的系统。我们描述了一种基于生物细胞行为的编程范式,并展示了使用我们的模型构建的系统在大规模故障中生存的能力。传统的系统设计方法需要明确的容错编程,这给设计、实现和测试阶段增加了大量的成本和复杂性。我们的方法通过使用简单的程序来提供隐式容错,这些程序是根据观察自然的指导原则构造的。通过实验验证了该模型的简单结构,并将其应用于自组织无线网络的分布式无线文件服务设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A biological programming model for self-healing
Biological systems exhibit remarkable adaptation and robustness in the face of widely changing environments. By adopting properties of biological systems, we hope to design systems that operate adequately even in the presence of catastrophic failures and large scale attacks. We describe a programming paradigm based on the actions of biological cells and demonstrate the ability of systems built using our model to survive massive failures. Traditional methods of system design require explicit programming for fault tolerance, which adds substantial costs and complexity to the design, implementation and testing phases. Our approach provides implicit fault tolerance by using simple programs constructed following guiding principles derived from observing nature. We illustrate our model with experiments producing simple structures and apply it to design a distributed wireless file service for ad hoc wireless networks.
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