Learning argumentation frameworks from labelings

Lars Bengel, Matthias Thimm, Tjitze Rienstra
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Abstract

We consider the problem of learning argumentation frameworks from a given set of labelings such that every input is a σ-labeling of these argumentation frameworks. Our new algorithm takes labelings and computes attack constraints for each argument that represent the restrictions on argumentation frameworks that are consistent with the input labelings. Having constraints on the level of arguments allows for a very effective parallelization of all computations. An important element of this approach is maintaining a representation of all argumentation frameworks that satisfy the input labelings instead of simply finding any suitable argumentation framework. This is especially important, for example, if we receive additional labelings at a later time and want to refine our result without having to start all over again. The developed algorithm is compared to previous works and an evaluation of its performance has been conducted.
从标签中学习论证框架
我们考虑从一组给定的标签中学习论证框架的问题,这样每个输入都是这些论证框架的σ-标签。我们的新算法采用标签并计算每个参数的攻击约束,这些参数表示与输入标签一致的论证框架上的限制。在参数级别上设置约束可以非常有效地并行化所有计算。这种方法的一个重要元素是维护满足输入标签的所有论证框架的表示,而不是简单地找到任何合适的论证框架。这是特别重要的,例如,如果我们在稍后的时间收到额外的标签,并希望改进我们的结果,而不必从头开始。将所开发的算法与以往的工作进行了比较,并对其性能进行了评价。
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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