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首页> 外文期刊>Cognitive Science >Dissociations in Performance on Novel Versus Irregular Items: Single-Route Demonstrations With Input Gain in Localist and Distributed Models
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Dissociations in Performance on Novel Versus Irregular Items: Single-Route Demonstrations With Input Gain in Localist and Distributed Models

机译:在新型产品和不规则产品上的性能分离:在本地模型和分布式模型中具有输入增益的单路线演示

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摘要

Four pairs of connectionist simulations are presented in which quasi-regular mappings are computed using localist and distributed representations. In each simulation, a control parameter termed input gain was modulated over the only level of representation that mapped inputs to outputs. Input gain caused both localist and distributed models to shift between regularity-based and item-based modes of processing. Performance on irregular items was selectively impaired in the regularity-based modes, whereas performance on novel items was selectively impaired in the item-based modes. Thus, the models exhibited double dissociations without separable processing components. These results are discussed in the context of analogous dissociations found in language domains such as word reading and inflectional morphology.
机译:提出了四对连接主义模拟,其中使用局部和分布式表示来计算准规则映射。在每个模拟中,在将输入映射到输出的唯一表示水平上调制了称为输入增益的控制参数。输入增益导致本地模型和分布式模型都在基于规则的处理模式和基于项目的处理模式之间转换。在基于规则的模式下,有选择地损害不规则物品的性能,而在基于项目的模式下,有选择地损害新物品的性能。因此,模型表现出双重分解,没有可分离的处理成分。在语言领域中发现的类似解离的背景下讨论了这些结果,例如单词阅读和词尾变化形态。

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