知觉学习中稳定表征的Hebbian重加权。

Barbara Anne Dosher, Zhong-Lin Lu
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引用次数: 53

摘要

知觉学习是通过练习或训练来提高知觉任务的表现。知觉学习的特异性被广泛地与早期视觉皮层表征的可塑性联系起来。在这里,我们回顾了支持Dosher和Lu(1998)最初提出的从稳定的感官表征中读出的塑性重加权的证据,作为知觉学习的另一种解释。一项任务分析可以识别特异性支持表征增强的情况,以及它意味着重新加权的情况,为评估文献提供了一个框架;重新加权与行为学结果和几乎所有的生理学报告大致一致。我们还考虑了知觉学习的主要模式是通过重新加权关联的增强Hebbian学习的证据,这对反馈的作用和重要性有影响。反馈对于感知学习不是必需的,但在某些情况下可以改善它,在某些情况下,块反馈也有帮助-所有效果通常与增强Hebbian模型兼容(Petrov, Dosher, & Lu, 2005)。通过重新加权来自稳定感觉表征的证据的感知学习和增强Hebbian学习的两个原则为考虑感知学习中的任务难度、任务漫游和线索等问题提供了理论结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hebbian Reweighting on Stable Representations in Perceptual Learning.

Perceptual learning is the improvement in perceptual task performance with practice or training. The observation of specificity in perceptual learning has been widely associated with plasticity in early visual cortex representations. Here, we review the evidence supporting the plastic reweighting of readout from stable sensory representations, originally proposed by Dosher & Lu (1998), as an alternative explanation of perceptual learning. A task-analysis that identifies circumstances in which specificity supports representation enhancement and those in which it implies reweighting provides a framework for evaluating the literature; reweighting is broadly consistent with the behavioral results and almost all of the physiological reports. We also consider the evidence that the primary mode of perceptual learning is through augmented Hebbian learning of the reweighted associations, which has implications for the role and importance of feedback. Feedback is not necessary for perceptual learning, but can improve it in some circumstances, and in some cases block feedback is also helpful - all effects that are generally compatible with an augmented Hebbian model (Petrov, Dosher, & Lu, 2005). The two principles of perceptual learning through reweighting evidence from stable sensory representations and of augmented Hebbian learning provide a theoretical structure for the consideration of issues such as task difficulty, task roving, and cuing in perceptual learning.

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