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Efficient Reasoning

机译:高效推理

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摘要

Many tasks require "reasoning" -i.e., deriving conclusions from a corpus of explicitly stored information-to solve their range of problems. An ideal reasoning system would produce all-an-only the correct answers to every possible query, produce answers that are as specific as possible, be expressive enough to permit any possible fact to be stored and any possible query to be asked, and be (time)efficient. Unfortunately, this is provably impossible: as correct and precise systems become more expressive, they can become increasingly inefficient, or even undecidable. This survey first formalizes these hardness results, in the context of both logic-and probability-based reasoning, then overviews the techniques now used to address, or at least side-step. The dilemma.
机译:许多任务都需要“推理”,即从大量显式存储的信息中得出结论,以解决其问题范围。理想的推理系统将为每个可能的查询提供完全正确的答案,产生尽可能具体的答案,表达能力足以允许存储任何可能的事实和任何可能的查询,并且是(时间)效率。不幸的是,这证明是不可能的:随着正确和精确的系统变得更具表现力,它们可能会变得越来越低效,甚至无法确定。这项调查首先在基于逻辑和基于概率的推理中将这些硬度结果形式化,然后概述了现在用于解决或至少避免使用的技术。困境。

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