Propagating Configuration Decisions with Modal Implication Graphs

S. Krieter, Thomas Thüm, Sandro Schulze, R. Schröter, G. Saake
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引用次数: 37

Abstract

Highly-configurable systems encompass thousands of interdependent configuration options, which require a non-trivial configuration process. Decision propagation enables a backtracking-free configuration process by computing values implied by user decisions. However, employing decision propagation for large-scale systems is a time-consuming task and, thus, can be a bottleneck in interactive configuration processes and analyses alike. We propose modal implication graphs to improve the performance of decision propagation by precomputing intermediate values used in the process. Our evaluation results show a significant improvement over state-of-the-art algorithms for 120 real-world systems.
用模态隐含图传播配置决策
高度可配置的系统包含数千个相互依赖的配置选项,这需要一个重要的配置过程。决策传播通过计算用户决策隐含的值来实现无回溯的配置过程。然而,在大规模系统中采用决策传播是一项耗时的任务,因此可能成为交互式配置过程和分析中的瓶颈。我们提出了模态隐含图,通过预计算决策传播过程中使用的中间值来提高决策传播的性能。我们的评估结果显示,在120个现实世界系统中,与最先进的算法相比,有了显著的改进。
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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