Architecture-based self-adaptation in the presence of multiple objectives

S. Cheng, D. Garlan, B. Schmerl
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引用次数: 220

Abstract

In the world of autonomic computing, the ultimate aim is to automate human tasks in system management to achieve high-level stakeholder objectives. One common approach is to capture and represent human expertise in a form executable by a computer. Techniques to capture such expertise in programs, scripts, or rule sets are effective to an extent. However, they are often incapable of expressing the necessary adaptation expertise and emulating the subtleties of trade-offs in high-level decision making. In this paper, we propose a new language of adaptation that is sufficiently expressive to capture the subtleties of choice, deriving its ontology from system administration tasks and its underlying formalism from utility theory.
在存在多个目标的情况下,基于架构的自适应
在自主计算的世界中,最终目标是自动化系统管理中的人工任务,以实现高级涉众目标。一种常见的方法是以计算机可执行的形式捕获和表示人类的专业知识。在一定程度上,在程序、脚本或规则集中获取此类专业知识的技术是有效的。然而,他们往往无法表达必要的适应专业知识,也无法模仿高层决策中权衡的微妙之处。在本文中,我们提出了一种新的适应语言,它具有足够的表达能力来捕捉选择的微妙之处,从系统管理任务中推导出其本体,从效用理论中推导出其潜在的形式主义。
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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