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符号数字处理的神经连接模式表明儿童的数学成就。

Neural connectivity patterns underlying symbolic number processing indicate mathematical achievement in children.

机构信息

Center for Cognitive Neuroscience, Duke University, USA.

出版信息

Dev Sci. 2014 Mar;17(2):187-202. doi: 10.1111/desc.12114. Epub 2013 Nov 23.

Abstract

In early childhood, humans learn culturally specific symbols for number that allow them entry into the world of complex numerical thinking. Yet little is known about how the brain supports the development of the uniquely human symbolic number system. Here, we use functional magnetic resonance imaging along with an effective connectivity analysis to investigate the neural substrates for symbolic number processing in young children. We hypothesized that, as children solidify the mapping between symbols and underlying magnitudes, important developmental changes occur in the neural communication between the right parietal region, important for the representation of non-symbolic numerical magnitudes, and other brain regions known to be critical for processing numerical symbols. To test this hypothesis, we scanned children between 4 and 6 years of age while they performed a magnitude comparison task with Arabic numerals (numerical, symbolic), dot arrays (numerical, non-symbolic), and lines (non-numerical). We then identified the right parietal seed region that showed greater blood-oxygen-level-dependent signal in the numerical versus the non-numerical conditions. A psychophysiological interaction method was used to find patterns of effective connectivity arising from this parietal seed region specific to symbolic compared to non-symbolic number processing. Two brain regions, the left supramarginal gyrus and the right precentral gyrus, showed significant effective connectivity from the right parietal cortex. Moreover, the degree of this effective connectivity to the left supramarginal gyrus was correlated with age, and the degree of the connectivity to the right precentral gyrus predicted performance on a standardized symbolic math test. These findings suggest that effective connectivity underlying symbolic number processing may be critical as children master the associations between numerical symbols and magnitudes, and that these connectivity patterns may serve as an important indicator of mathematical achievement.

摘要

在儿童早期,人类学习用于数字的文化特定符号,从而进入复杂的数字思维世界。然而,对于大脑如何支持独特的人类符号数字系统的发展,我们知之甚少。在这里,我们使用功能磁共振成像以及有效连接分析来研究幼儿符号数字处理的神经基础。我们假设,随着儿童巩固符号和潜在数量之间的映射,右顶叶区域之间的神经通讯会发生重要的发展变化,该区域对于非符号数字数量的表示很重要,而其他对于处理数字符号至关重要的大脑区域也是如此。为了验证这一假设,我们对 4 至 6 岁的儿童进行了扫描,让他们在执行阿拉伯数字(数字、符号)、点数组(数字、非符号)和线(非数字)的数量比较任务时进行扫描。然后,我们确定了右顶叶种子区域,该区域在数字与非数字条件下显示出更大的血氧水平依赖性信号。使用心理生理交互方法找到源于该顶叶种子区域的、针对符号数字处理的有效连接模式。两个大脑区域,即左侧缘上回和右侧中央前回,显示出与符号数字处理相比,来自右顶叶皮层的显著有效连接。此外,到左侧缘上回的有效连接程度与年龄相关,而与右侧中央前回的连接程度预测了标准化符号数学测试的表现。这些发现表明,符号数字处理的有效连接可能是关键的,因为儿童掌握了数字符号和数量之间的关联,并且这些连接模式可能是数学成就的重要指标。

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