Visual perceptual learning of feature conjunctions leverages non-linear mixed selectivity.

IF 3.6 1区 心理学 Q1 EDUCATION & EDUCATIONAL RESEARCH npj Science of Learning Pub Date : 2024-03-01 DOI:10.1038/s41539-024-00226-w
Behnam Karami, Caspar M Schwiedrzik
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Abstract

Visual objects are often defined by multiple features. Therefore, learning novel objects entails learning feature conjunctions. Visual cortex is organized into distinct anatomical compartments, each of which is devoted to processing a single feature. A prime example are neurons purely selective to color and orientation, respectively. However, neurons that jointly encode multiple features (mixed selectivity) also exist across the brain and play critical roles in a multitude of tasks. Here, we sought to uncover the optimal policy that our brain adapts to achieve conjunction learning using these available resources. 59 human subjects practiced orientation-color conjunction learning in four psychophysical experiments designed to nudge the visual system towards using one or the other resource. We find that conjunction learning is possible by linear mixing of pure color and orientation information, but that more and faster learning takes place when both pure and mixed selectivity representations are involved. We also find that learning with mixed selectivity confers advantages in performing an untrained "exclusive or" (XOR) task several months after learning the original conjunction task. This study sheds light on possible mechanisms underlying conjunction learning and highlights the importance of learning by mixed selectivity.

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利用非线性混合选择性进行特征连接的视觉感知学习
视觉对象通常由多个特征定义。因此,学习新物体需要学习特征组合。视觉皮层分为不同的解剖区块,每个区块专门处理一个特征。最典型的例子就是神经元对颜色和方向的纯粹选择性。然而,大脑中也存在联合编码多种特征(混合选择性)的神经元,它们在多种任务中发挥着关键作用。在这里,我们试图揭示大脑利用这些可用资源实现联合学习的最佳策略。59 名人类受试者在四项心理物理实验中进行了定向色彩联结学习,旨在促使视觉系统使用其中一种资源。我们发现,通过线性混合纯颜色和方位信息可以进行连线学习,但如果同时涉及纯选择性表征和混合选择性表征,学习效果会更好、更快。我们还发现,使用混合选择性进行学习,在学习原始连线任务数月后执行未经训练的 "排他性或"(XOR)任务时具有优势。这项研究揭示了连线学习的可能机制,并强调了混合选择性学习的重要性。
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来源期刊
CiteScore
5.40
自引率
7.10%
发文量
29
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