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Minimal models vs. logic programming: the case of counterfactual conditionals

机译:最小模型与逻辑编程:反事实条件的情况

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This article aims to propagate Logic Programming as a formal tool to deal with non-monotonic reasoning. In philosophy and linguistics non-monotonic reasoning is modelled using Minimal Models as standard, i.e., by imposing an order (or selection function) on the class of all models and then by defining entailment as only caring about the minimal models of the premises with respect to the order. In this article we investigate the question whether instead of minimal models we should use logic programming to model non-monotonic reasoning. Logic programming is an attractive alternative to a minimal models approach in that it makes concrete predictions in an efficient and transparent way. We study this question by focusing on one particular phenomenon that gives rise to non-monotonic inferences: conditional sentences.
机译:本文旨在将逻辑编程传播为处理非单调推理的正式工具。在哲学和语言学中,以最小模型为标准对非单调推理进行建模,即通过在所有模型的类上强加一个顺序(或选择函数),然后将定义定义为仅关心前提的最小模型订单。在本文中,我们研究以下问题:是否应该使用逻辑编程来代替非单调推理来代替最小模型。逻辑编程是最小模型方法的一种有吸引力的替代方法,因为它以有效且透明的方式进行了具体的预测。我们通过关注引起非单调推理的一种特殊现象来研究这个问题:条件语句。

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