组合优化问题的解释

IF 1.7 3区 计算机科学 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING Journal of Computer Languages Pub Date : 2024-05-03 DOI:10.1016/j.cola.2024.101272
Martin Erwig, Prashant Kumar
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引用次数: 0

摘要

我们介绍了一种为组合优化算法的结果生成解释的表示方法。其中的两个关键思想是:(A)维护这些算法所处理值的细粒度表示法;(B)通过合并、过滤和聚合操作,从这些表示法中得出解释。在我们的模型中,解释实质上是将问题的解决方案与假设的替代方案进行高层次比较,阐明解决方案优于替代方案的原因。与其他动态程序表示法(如轨迹)相比,我们的值表示法所产生的解释更小。基于对解释简洁性的衡量标准,我们通过大量实验证明,我们的方法所产生的解释较小,并能很好地随着问题规模的扩大而扩展,适用于许多不同的应用。
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Explanations for combinatorial optimization problems

We introduce a representation for generating explanations for the outcomes of combinatorial optimization algorithms. The two key ideas are (A) to maintain fine-grained representations of the values manipulated by these algorithms and (B) to derive explanations from these representations through merge, filter, and aggregation operations. An explanation in our model presents essentially a high-level comparison of the solution to a problem with a hypothesized alternative, illuminating why the solution is better than the alternative. Our value representation results in explanations smaller than other dynamic program representations, such as traces. Based on a measure for the conciseness of explanations we demonstrate through a number of experiments that the explanations produced by our approach are small and scale well with problem size across a number of different applications.

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来源期刊
Journal of Computer Languages
Journal of Computer Languages Computer Science-Computer Networks and Communications
CiteScore
5.00
自引率
13.60%
发文量
36
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