认知不确定性下Dempster-Shafer理论在任务映射中的应用

C. Uphoff, Daniel Mueller-Gritschneder, Ulf Schlichtmann
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引用次数: 1

摘要

在系统设计中一个常见的问题是在早期设计阶段缺乏对系统参数的了解。这导致了系统性能的认知不确定性。经典概率论对认知不确定性下不同系统实现的评价施加了不利的限制。另一种数学方法是Dempster-Shafer理论。本文研究了最长处理时间算法中Dempster-Shafer理论的集成,该算法是嵌入式系统设计中任务映射的一种启发式算法。该算法接受对处理器速度和任务复杂性的不确定估计。它可以基于一定程度的悲观情绪,生成几个看似合理的任务映射。我们提出两个标准来比较这些映射的性能和风险。此外,我们还提出了对Dempster-Shafer结构的算术运算的近似,使其易于处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Dempster-Shafer Theory to task mapping under epistemic uncertainty
A common problem in system design is a lack of knowledge about the system parameters in early design stages. This results in epistemic uncertainty in the systems performance. Classic probability theory imposes unfavourable restrictions for the evaluation of different system realisations under epistemic uncertainty. An alternative mathematical approach is Dempster-Shafer Theory. In this paper we investigate the integration of Dempster-Shafer Theory in the Longest Processing Time algorithm, which is a heuristic for task mapping in embedded system design. The algorithm accepts uncertain estimates of processor speeds and task complexities. It can produce several plausible task mappings based on a degree of pessimism. We propose two criteria to compare these mappings in terms of performance and risk. Moreover we propose an approximation for arithmetic operations on Dempster-Shafer structures, which makes these tractable.
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