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Dyscalculia and the Calculating Brain
1Saul R. Korey Department of Neurology, Albert Einstein College of Medicine, Bronx, New York; Department of Pediatrics, Albert Einstein College of Medicine, Bronx, New York; Rose F. Kennedy Center for Research on Intellectual and Developmental Disabilities, Albert Einstein College of Medicine, Bronx, New York.
Insights
Dyscalculia, a learning difficulty affecting 5% of children, often co-occurs with other disorders. Its neurological basis is complex and varies among individuals, unlike the innate ability to recognize small quantities.
Area of Science:
- Neuroscience
- Developmental Psychology
- Cognitive Science
Background:
- Dyscalculia affects approximately 5% of school-age children, yet receives less research attention than dyslexia.
- It frequently co-occurs with other developmental disorders, including dyslexia, ADHD, and anxiety.
- Humans possess an innate, nonverbal approximate number system (subitizing) for recognizing small quantities.
Purpose of the Study:
- To explore the cognitive and neural underpinnings of dyscalculia.
- To differentiate the brain networks involved in approximate versus exact number processing.
- To understand the developmental trajectory of number skills and their neural correlates.
Main Methods:
- Review of existing literature on dyscalculia, number processing, and associated neurological mechanisms.
- Comparison of the innate approximate number system with learned symbolic number representations.
- Analysis of neuroimaging studies (fMRI) investigating brain activation during number tasks.
Main Results:
- Calculation involves complex visual-spatial and visual-verbal networks, with less left lateralization than language.
- Approximate number system (ANS) activation is more right-sided, while exact number processing is more left-sided.
- Persistent widespread non-numerical brain activations are observed in some individuals with dyscalculia.
Conclusions:
- Dyscalculia lacks a single, universal neurological cause or mechanism.
- The development of exact number skills requires learning symbolic representations and understanding their properties.
- Brain activation patterns during number tasks mature with increasing skill, but may remain atypical in dyscalculia.
Abstract:
Dyscalculia, like dyslexia, affects some 5% of school-age children but has received much less investigative attention. In two thirds of affected children, dyscalculia is associated with another developmental disorder like dyslexia, attention-deficit disorder, anxiety disorder, visual and spatial disorder, or cultural deprivation. Infants, primates, some birds, and other animals are born with the innate ability, called subitizing, to tell at a glance whether small sets of scattered dots or other items differ by one or more item. This nonverbal approximate number system extends mostly to single digit sets as visual discrimination drops logarithmically to "many" with increasing numerosity (size effect) and crowding (distance effect). Preschoolers need several years and specific teaching to learn verbal names and visual symbols for numbers and school agers to understand their cardinality and ordinality and the invariance of their sequence (arithmetic number line) that enables calculation. This arithmetic linear line differs drastically from the nonlinear approximate number system mental number line that parallels the individual number-tuned neurons in the intraparietal sulcus in monkeys and overlying scalp distribution of discrete functional magnetic resonance imaging activations by number tasks in man. Calculation is a complex skill that activates both visual and spatial and visual and verbal networks. It is less strongly left lateralized than language, with approximate number system activation somewhat more right sided and exact number and arithmetic activation more left sided. Maturation and increasing number skill decrease associated widespread non-numerical brain activations that persist in some individuals with dyscalculia, which has no single, universal neurological cause or underlying mechanism in all affected individuals.
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