Short Boolean Formulas as Explanations in Practice

Author:

Jaakkola ReijoORCID,Janhunen TomiORCID,Kuusisto AnttiORCID,Rankooh Masood FeyzbakhshORCID,Vilander MiikkaORCID

Abstract

AbstractWe investigate explainability via short Boolean formulas in the data model based on unary relations. As an explanation of lengthk, we take a Boolean formula of lengthkthat minimizes the error with respect to the target attribute to be explained. We first provide novel quantitative bounds for the expected error in this scenario. We then also demonstrate how the setting works in practice by studying three concrete data sets. In each case, we calculate explanation formulas of different lengths using an encoding in Answer Set Programming. The most accurate formulas we obtain achieve errors similar to other methods on the same data sets. However, due to overfitting, these formulas are not necessarily ideal explanations, so we use cross validation to identify a suitable length for explanations. By limiting to shorter formulas, we obtain explanations that avoid overfitting but are still reasonably accurate and also, importantly, human interpretable.

Publisher

Springer Nature Switzerland

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Short Boolean Formulas as Explanations in Practice;Logics in Artificial Intelligence;2023

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