免疫自我调节适应后设计的自主网络应用

Chonho Lee, J. Suzuki
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引用次数: 6

摘要

随着互联网应用在复杂性和规模上的迅速增长,人们期望它们能够自治并适应网络中的动态变化。基于对各种生物系统已经克服这些要求的观察,本文描述了一个受生物学启发的框架,称为iNet,用于设计自主和自适应的互联网应用程序。它是根据免疫系统如何检测抗原(如病毒),特异性地产生抗体以消除它们,并自我调节针对其异常(如免疫缺陷和自身免疫)的抗体产生的机制设计的。iNet将一组环境条件(例如,网络流量和资源可用性)建模为抗原,将一种应用行为(例如,迁移和繁殖)建模为抗体。iNet允许每个应用程序自主地感知其周围环境条件(即抗原),以根据评估策略评估它是否能很好地适应所感知的条件,如果不能,则自适应地调用适合条件的行为(即抗体)。iNet还允许每个应用程序动态配置自己的评估策略,以便在正确的时间触发行为调用。仿真结果表明,iNet允许应用程序自主适应不断变化的环境条件,并在评估失败时通过配置评估策略动态地自我调节行为调用
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autonomic Network Applications Designed after Immunological Self-Regulatory Adaptation
As Internet applications have been rapidly increasing in complexity and scale, they are expected to be autonomous and adaptive to dynamic changes in the network. Based on the observation that various biological systems have already overcome these requirements, this paper describes a biologically-inspired framework, called iNet, to design autonomous and adaptive Internet applications. It is designed after the mechanisms behind how the immune system detects antigens (e.g., viruses), specifically produces antibodies to eliminate them, and self-regulates the production of antibodies against its anomaly (e.g., immunodeficiency and autoimmunity). iNet models a set of environment conditions (e.g., network traffic and resource availability) as an antigen and a behavior of applications (e.g., migration and reproduction) as an antibody. iNet allows each application to autonomously sense its surrounding environment conditions (i.e., an antigen) to evaluate whether it adapts well to the sensed conditions based on an evaluation policy, and if it does not, adaptively invoke a behavior (i.e., an antibody) suitable for the conditions. iNet also allows each application to dynamically configure its own evaluation policy so that it can trigger the behavior invocation at the right time. Simulation results show that iNet allows applications to autonomously adapt to changing environment conditions and to dynamically self-regulate the behavior invocation by configuring the evaluation policy when the evaluation fails
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