Meta-Reasoning about Decisions in Autonomous Semi-Intelligent Systems

M. Danielson, L. Ekenberg
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引用次数: 1

Abstract

For intelligent systems to become autonomous in any real sense, they need an ability to make decisions on situations that were not entirely conceived of at compile-time. Machine learning algorithms are excellent in mimicking the behaviour of some gold standard role model, and this can include decision making by the role model. But once out of familiar contexts, the decision making becomes harder and needs an element of more independent probabilistic reasoning and decision making. This paper presents such a method based on a belief mass interpretation of the decision information, where the components are imprecise and thus uncertain by means of intervals.
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自主半智能系统决策的元推理
对于真正意义上的自治智能系统来说,它们需要能够在编译时没有完全考虑到的情况下做出决策。机器学习算法在模仿一些黄金标准榜样的行为方面表现出色,这可以包括榜样的决策。但一旦脱离了熟悉的环境,决策就变得更加困难,需要更独立的概率推理和决策。本文提出了一种基于置信质量的决策信息解释方法,其中决策信息的分量是不精确的,因而具有区间不确定性。
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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