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A systematic review and taxonomy of explanations in decision support and recommender systems

机译:对决策支持和推荐系统中的解释进行系统的审查和分类

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With the recent advances in the field of artificial intelligence, an increasing number of decision-making tasks are delegated to software systems. A key requirement for the success and adoption of such systems is that users must trust system choices or even fully automated decisions. To achieve this, explanation facilities have been widely investigated as a means of establishing trust in these systems since the early years of expert systems. With today’s increasingly sophisticated machine learning algorithms, new challenges in the context of explanations, accountability, and trust towards such systems constantly arise. In this work, we systematically review the literature on explanations in advice-giving systems. This is a family of systems that includes recommender systems, which is one of the most successful classes of advice-giving software in practice. We investigate the purposes of explanations as well as how they are generated, presented to users, and evaluated. As a result, we derive a novel comprehensive taxonomy of aspects to be considered when designing explanation facilities for current and future decision support systems. The taxonomy includes a variety of different facets, such as explanation objective, responsiveness, content and presentation. Moreover, we identified several challenges that remain unaddressed so far, for example related to fine-grained issues associated with the presentation of explanations and how explanation facilities are evaluated.
机译:随着人工智能领域的最新进展,越来越多的决策任务被委托给软件系统。成功和采用此类系统的关键要求是用户必须信任系统的选择,甚至是完全自动化的决策。为此,自专家系统成立以来,人们就广泛地研究了解释工具,以建立对这些系统的信任。随着当今机器学习算法的日趋完善,在解释,问责制和对此类系统的信任的背景下,不断出现新的挑战。在这项工作中,我们系统地回顾了有关建议系统中解释的文献。这是一个系统系列,其中包括推荐系统,这是实践中最成功的建议软件类别之一。我们调查解释的目的以及解释的产生方式,呈现给用户和评估的方式。结果,当设计用于当前和将来的决策支持系统的解释工具时,我们推导了一种新颖的方面综合分类法。分类法包括各种不同方面,例如解释目标,响应能力,内容和表示。此外,我们确定了迄今为止仍未解决的若干挑战,例如与与解释说明相关的细粒度问题以及解释工具的评估方式有关。

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