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Updated: Jun 16, 2026

Measuring Statistical Learning Across Modalities and Domains in School-Aged Children Via an Online Platform and Neuroimaging Techniques
Published on: June 30, 2020
An fMRI study of magnitude comparison and exact addition in children
Ernesta M Meintjes1, Sandra W Jacobson, Christopher D Molteno
1Department of Human Biology, Faculty of Health Sciences, University of Cape Town, Cape Town, South Africa. ernesta.meintjes@uct.ac.za
Insights
Brain imaging reveals that the anterior horizontal intraparietal sulcus (HIPS) is crucial for number processing in children, similar to adults. This parietofrontal network is active even in middle childhood.
Area of Science:
- Neuroscience
- Cognitive Neuroscience
- Developmental Neuroscience
Background:
- Adult number processing literature consistently identifies a parietofrontal network.
- Studies on children's number processing show less consistent results, potentially due to methodological variations.
Purpose of the Study:
- To investigate the neural basis of number processing in children.
- To compare children's number processing networks with those identified in adults.
Main Methods:
- Functional magnetic resonance imaging (fMRI) was used to examine brain activity.
- 18 right-handed children (8-12 years) from the Cape Coloured community participated.
- Participants completed Proximity Judgment and Exact Addition (EA) tasks.
Main Results:
- The anterior horizontal intraparietal sulcus (HIPS) showed significant activation, supporting its role in quantity representation and manipulation in children.
- Posterior medial frontal cortex activation was extensive, even for simple symbolic number tasks.
- Increased activation was observed in the left precentral sulcus and, for EA, the head of the caudate nucleus.
- The angular gyrus and posterior superior parietal lobule, linked to adult number processing, were not activated in this cohort.
Conclusions:
- The findings support the hypothesis that the anterior HIPS is a key region for number processing in children, mirroring adult findings.
- While functional specialization may increase with automaticity, the core parietofrontal network for number processing is robustly activated by middle childhood.
- Developmental differences in activation patterns, such as in the posterior medial frontal cortex and caudate nucleus, suggest unique aspects of number processing in developing brains.
Abstract:
By contrast to the adult literature, in which a consistent parietofrontal network for number processing has been identified, the data from studies of number processing in children have been less consistent, probably due to differences in study design and control conditions. Number processing was examined using functional magnetic resonance imaging in 18 right-handed children (8-12 years) from the Cape Coloured community in Cape Town, South Africa, using Proximity Judgment and Exact Addition (EA) tasks. The findings were consistent with the hypothesis that, as in adults, the anterior horizontal intraparietal sulcus (HIPS) plays a major role in the representation and manipulation of quantity in children. The posterior medial frontal cortex, believed to be involved in performance monitoring in more complex arithmetic manipulations in adults, was extensively activated even for relatively simple symbolic number processing in the children. Other areas activated to a greater degree in the children included the left precentral sulcus, which may mediate number knowledge and, for EA, the head of the caudate nucleus, which is part of a fronto-subcortical circuit involved in the behavioral execution of sequences. Two regions that have been linked to number processing in adults - the angular gyrus and posterior superior parietal lobule - were not activated in the children. The data are consistent with the inference that although the functional specialization of the anterior HIPS may increase as symbolic number processing becomes increasingly automatic, this region and other elements of the parietofrontal network identified in adults are already reliably and robustly activated by middle childhood.

