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Learning and disrupting invariance in visual recognition with a temporal association rule

机译:用时间关联规则学习和破坏视觉识别中的不变性

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摘要

Learning by temporal association rules such as Foldiak's trace rule is an attractive hypothesis that explains the development of invariance in visual recognition. Consistent with these rules, several recent experiments have shown that invariance can be broken at both the psychophysical and single cell levels. We show (1) that temporal association learning provides appropriate invariance in models of object recognition inspired by the visual cortex, (2) that we can replicate the “invariance disruption” experiments using these models with a temporal association learning rule to develop and maintain invariance, and (3) that despite dramatic single cell effects, a population of cells is very robust to these disruptions. We argue that these models account for the stability of perceptual invariance despite the underlying plasticity of the system, the variability of the visual world and expected noise in the biological mechanisms.
机译:通过诸如Foldiak的跟踪规则之类的时间关联规则进行学习是一个有吸引力的假设,它解释了视觉识别不变性的发展。与这些规则一致,最近的一些实验表明,在心理和单个细胞水平上都可以打破不变性。我们证明(1)时间关联学习在视觉皮层启发下的对象识别模型中提供了适当的不变性;(2)我们可以使用这些模型与时间关联学习规则来复制“不变性破坏”实验以发展和维持不变性(3)尽管有巨大的单细胞效应,但细胞群对这些破坏非常有效。我们认为,尽管系统具有潜在的可塑性,视觉世界的可变性以及生物机制中的预期噪声,但这些模型仍说明了感知不变性的稳定性。

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