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首页> 外文期刊>Journal of Experimental & Theoretical Artificial Intelligence >Analogy perception applied to seven tests of word comprehension
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Analogy perception applied to seven tests of word comprehension

机译:类比感知应用于七个单词理解测试

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摘要

It has been argued that analogy is the core of cognition. In AI research, algorithms for analogy are often limited by the need for hand-coded high-level representations as input. An alternative approach is to use high-level perception, in which high-level representations are automatically generated from raw data. Analogy perception is the process of recognising analogies using high-level perception. We present PairClass, an algorithm for analogy perception that recognises lexical proportional analogies using representations that are automatically generated from a large corpus of raw textual data. A proportional analogy is an analogy of the form A : B :: C : D, meaning ‘A is to B as C is to D’. A lexical proportional analogy is a proportional analogy with words, such as carpenter : wood :: mason : stone. PairClass represents the semantic relations between two words using a high-dimensional feature vector, in which the elements are based on frequencies of patterns in the corpus. PairClass recognises analogies by applying standard supervised machine-learning techniques to the feature vectors. We show how seven different tests of word comprehension can be framed as problems of analogy perception and then apply PairClass to the seven resulting sets of analogy perception problems. We achieve competitive results on all seven tests. This is the first time a uniform approach has handled such a range of tests of word comprehension.
机译:有人认为类比是认知的核心。在AI研究中,类比算法通常受到对手工编码的高级表示作为输入的需求的限制。另一种方法是使用高级感知,其中从原始数据自动生成高级表示。类比感知是使用高级感知来识别类比的过程。我们介绍了PairClass,这是一种用于类比感知的算法,它使用从大量原始文本数据集自动生成的表示形式来识别词汇比例类比。比例类比是形式A:B :: C:D的类比,意思是“ A是B,C是D”。词汇比例类比是与单词的比例类比,例如carpenter:wood :: mason:stone。 PairClass使用高维特征向量表示两个单词之间的语义关系,其中元素基于语料库中模式的频率。 PairClass通过将标准的监督机器学习技术应用于特征向量来识别类比。我们展示了如何将七个不同的单词理解测试构架为类比感知问题,然后将PairClass应用于七个结果集的类比感知问题。我们在所有七个测试中均取得了竞争性结果。这是统一的方法第一次处理这种范围的单词理解测试。

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