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Managing dynamic CSPs with preferences

机译:使用首选项管理动态CSP

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摘要

We present a new framework, managing Constraint Satisfaction Problems (CSPs) with preferences in a dynamic environment. Unlike the existing CSP models managing one form of preferences, ours supports four types, namely: unary and binary constraint preferences, composite preferences and conditional preferences. This offers more expressive power in representing a wide variety of dynamic constraint applications under preferences and where the possible changes are known and available a priori. Conditional preferences allow some preference functions to be added dynamically to the problem, during the resolution process, if a given condition on some variables is true. A composite preference is a higher level of preference among the choices of a composite variable. Composite variables are variables whose possible values are CSP variables. In other words, this allows us to represent disjunctive CSP variables. The preferences are viewed as a set of soft constraints using the fuzzy CSP framework. Solving constraint problems with preferences consists in finding a solution satisfying all the constraints while optimizing the global preference value. This is handled by four variants of the branch and bound algorithm, we propose in this paper, and where constraint propagation is used to improve the time efficiency in practice. In order to evaluate and compare the performance of these four strategies, we conducted an experimental study on randomly generated dynamic CSPs with quantitative preferences. The results are reported and discussed in the paper.
机译:我们提出了一个新的框架,可以在动态环境中使用首选项来管理约束满足问题(CSP)。与管理一种形式的首选项的现有CSP模型不同,我们的模型支持四种类型,即:一元和二进制约束首选项,复合首选项和条件首选项。这在表示偏好下以及先验已知和可用的可能变化的动态约束应用程序中表现出更大的表达能力。如果在某些变量上的给定条件为真,则条件首选项允许在解决过程中将某些首选项功能动态添加到问题中。复合偏好是复合变量选择中的较高偏好级别。复合变量是可能值为CSP变量的变量。换句话说,这使我们可以表示析取的CSP变量。使用模糊CSP框架将首选项视为一组软约束。用首选项解决约束问题包括找到在优化全局首选项值的同时满足所有约束的解决方案。这是由我们在本文中提出的分支定界算法的四个变体来解决的,其中使用约束传播来提高实践中的时间效率。为了评估和比较这四种策略的性能,我们对具有定量偏好的随机生成的动态CSP进行了实验研究。本文报道并讨论了结果。

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