Taming uncertainty in self-adaptive software

N. Esfahani, Ehsan Kouroshfar, S. Malek
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引用次数: 141

Abstract

Self-adaptation endows a software system with the ability to satisfy certain objectives by automatically modifying its behavior. While many promising approaches for the construction of self-adaptive software systems have been developed, the majority of them ignore the uncertainty underlying the adaptation decisions. This has been one of the key obstacles to wide-spread adoption of self-adaption techniques in risk-averse real-world settings. In this paper, we describe an approach, called POssIbilistic SElf-aDaptation (POISED), for tackling the challenge posed by uncertainty in making adaptation decisions. POISED builds on possibility theory to assess both the positive and negative consequences of uncertainty. It makes adaptation decisions that result in the best range of potential behavior. We demonstrate POISED's application to the problem of improving a software system's quality of service via runtime reconfiguration of its customizable software components. We have extensively evaluated POISED using a prototype of a robotic software system.
自适应软件中的不确定性
自适应赋予软件系统通过自动修改其行为来满足某些目标的能力。虽然已经开发了许多有前途的方法来构建自适应软件系统,但它们中的大多数都忽略了适应决策背后的不确定性。这一直是在规避风险的现实环境中广泛采用自适应技术的主要障碍之一。在本文中,我们描述了一种称为“可能性自我适应”的方法,用于解决做出适应决策时不确定性带来的挑战。《平衡》建立在可能性理论的基础上,以评估不确定性的积极和消极后果。它做出适应决策,从而产生最佳的潜在行为范围。我们演示了通过运行时重新配置可定制的软件组件来改善软件系统服务质量的问题。我们使用机器人软件系统的原型广泛评估了泰克。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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