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MAC/FAC: A Model of Similarity-Based Retrieval

机译:MAC / FAC:基于相似度的检索模型

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摘要

We present a model of similarity-based retrieval that attempts to capture three seemingly contradictory psychological phenomena: (a) structural commonalities are weighed more heavily than surface commonalities in similarity judgments for items in working memory; (b) in retrieval, superficial similarity is more important than structural similarity; and yet (c) purely structural (analogical) remindings e sometimes experienced. Our model, MAC/FAC, explains these phenomena in terms of a two-stage process. The first stage uses a computationally cheap, non-structural matcher to filter candidate long-term memory items. It uses content vectors, a redundant encoding of structured representations whose dot product estimates how well the corresponding structural representations will match. The second stage uses SME (structure-mapping engine) to compute structural matches on the handful of items found by the first stage. We show the utility of the MAC/FAC model through a series of computational experiments: (a) We demonstrate that MAC/FAC can model patterns of access found in psychological data; (b) we argue via sensitivity analyses that these simulation results rely on the theory; and (c) we compare the performance of MAC/FAC with ARCS, an alternate model of similarity-based retrieval, and demonstrate that MAC/FAC explains the data better than ARCS. Finally, we discuss limitations and possible extensions of the model, relationships with other recent retrieval models, and place MAC/FAC in the context of other recent work on the nature of similarity.
机译:我们提出了一个基于相似度的检索模型,该模型试图捕获三种看似矛盾的心理现象:(a)在工作记忆中项目的相似性判断中,结构性共性比表面共性具有更大的权重; (b)在检索中,表面相似度比结构相似度更重要;并且(c)有时会经历纯粹的结构性(类比)提醒。我们的模型MAC / FAC通过两个阶段的过程来解释这些现象。第一阶段使用计算上便宜的非结构匹配器来过滤候选长期存储器项。它使用内容向量,这是结构化表示形式的冗余编码,其点积估计相应结构化表示形式的匹配程度。第二阶段使用SME(结构映射引擎)来计算第一阶段发现的少数项目的结构匹配。我们通过一系列计算实验证明了MAC / FAC模型的实用性:(a)我们证明了MAC / FAC可以对心理数据中的访问模式进行建模; (b)我们通过敏感性分析认为这些模拟结果依赖于该理论; (c)我们将MAC / FAC与基于相似性检索的替代模型ARCS的性能进行了比较,并证明了MAC / FAC比ARCS更好地解释了数据。最后,我们讨论了模型的局限性和可能的​​扩展,与其他近期检索模型的关系,并将MAC / FAC置于其他近期研究的背景下,探讨了相似性的本质。

著录项

  • 来源
    《Cognitive science》 |1995年第2期|141-205|共65页
  • 作者单位

    Northwestern University;

    Northwestern University;

    Northwestern University;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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