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Cheung, Pierina; Toomey, Mary; Jiang, Yahao Harry; Stoop, Tawni B.; Shusterman, Anna – Developmental Science, 2022
Studies on children's understanding of counting examine when and how children acquire the cardinal principle: the idea that the last word in a counted set reflects the cardinal value of the set. Using Wynn's (1990) Give-N Task, researchers classify children who can count to generate large sets as having acquired the cardinal principle…
Descriptors: Computation, Performance, Number Concepts, Numeracy
Serena Dolfi; Gisella Decarli; Maristella Lunardon; Michele De Filippo De Grazia; Silvia Gerola; Silvia Lanfranchi; Giuseppe Cossu; Francesco Sella; Alberto Testolin; Marco Zorzi – Developmental Science, 2024
Impaired numerosity perception in developmental dyscalculia (low "number acuity") has been interpreted as evidence of reduced representational precision in the neurocognitive system supporting non-symbolic number sense. However, recent studies suggest that poor numerosity judgments might stem from stronger interference from non-numerical…
Descriptors: Number Concepts, Learning Disabilities, Numeracy, Mathematics Skills
Wilkey, Eric D.; Shanley, Lina; Sabb, Fred; Ansari, Daniel; Cohen, Jason C.; Men, Virany; Heller, Nicole A.; Clarke, Ben – Developmental Science, 2022
Children's ability to discriminate nonsymbolic number (e.g., the number of items in a set) is a commonly studied predictor of later math skills. Number discrimination improves throughout development, but what drives this improvement is unclear. Competing theories suggest that it may be due to a sharpening numerical representation or an improved…
Descriptors: Numbers, Mathematics Skills, Predictor Variables, Number Concepts
Abreu-Mendoza, Roberto A.; Pincus, Melanie; Chamorro, Yaira; Jolles, Dietsje; Matute, Esmeralda; Rosenberg-Lee, Miriam – Developmental Science, 2022
Mathematical cognition requires coordinated activity across multiple brain regions, leading to the emergence of resting-state functional connectivity as a method for studying the neural basis of differences in mathematical achievement. Hyper-connectivity of the intraparietal sulcus (IPS), a key locus of mathematical and numerical processing, has…
Descriptors: Brain Hemisphere Functions, Mathematics Achievement, Secondary School Students, Cognitive Processes
Hutchison, Jane E.; Ansari, Daniel; Zheng, Samuel; De Jesus, Stefanie; Lyons, Ian M. – Developmental Science, 2020
A long-standing debate in the field of numerical cognition concerns the degree to which symbolic and non-symbolic processing are related over the course of development. Of particular interest is the possibility that this link depends on the range of quantities in question. Behavioral and neuroimaging research with adults suggests that symbolic and…
Descriptors: Kindergarten, Numbers, Cognitive Processes, Young Children
Di Giorgio, Elisa; Lunghi, Marco; Rugani, Rosa; Regolin, Lucia; Dalla Barba, Beatrice; Vallortigara, Giorgio; Simion, Francesca – Developmental Science, 2019
Humans represent numbers on a mental number line with smaller numbers on the left and larger numbers on the right side. A left-to-right oriented spatial-numerical association, (SNA), has been demonstrated in animals and infants. However, the possibility that SNA is learnt by early exposure to caregivers' directional biases is still open. We…
Descriptors: Numbers, Cognitive Processes, Spatial Ability, Neonates
Nicoladis, Elena; Marentette, Paula; Pika, Simone – Developmental Science, 2019
Monolingual English-speaking preschool children tend to process number gestures as unanalyzed wholes rather than use the one-to-one (finger-to-quantity) correspondence. By school age, however, children can use the one-to-one correspondence. The purpose of the present studies was to test whether children learn one-to-one correspondence through…
Descriptors: Monolingualism, English, Preschool Children, Nonverbal Communication
Emerson, Robert W.; Cantlon, Jessica F. – Developmental Science, 2015
Human children possess the ability to approximate numerical quantity nonverbally from a young age. Over the course of early childhood, children develop increasingly precise representations of numerical values, including a symbolic number system that allows them to conceive of numerical information as Arabic numerals or number words. Functional…
Descriptors: Longitudinal Studies, Number Concepts, Numbers, Neuropsychology
Park, Joonkoo; van den Berg, Berry; Chiang, Crystal; Woldorff, Marty G.; Brannon, Elizabeth M. – Developmental Science, 2018
Adult neuroimaging studies have demonstrated dissociable neural activation patterns in the visual cortex in response to letters (Latin alphabet) and numbers (Arabic numerals), which suggest a strong experiential influence of reading and mathematics on the human visual system. Here, developmental trajectories in the event-related potential (ERP)…
Descriptors: Visual Perception, Neurological Organization, Brain Hemisphere Functions, Alphabets
Coubart, Aurélie; Izard, Véronique; Spelke, Elizabeth S.; Marie, Julien; Streri, Arlette – Developmental Science, 2014
In the first year of life, infants possess two cognitive systems encoding numerical information: one for processing the numerosity of sets of 4 or more items, and the second for tracking up to 3 objects in parallel. While a previous study showed the former system to be already present a few hours after birth, it is unknown whether the latter…
Descriptors: Neonates, Numbers, Cognitive Processes, Association (Psychology)
Rouder, Jeffrey N.; Geary, David C. – Developmental Science, 2014
Learning of the mathematical number line has been hypothesized to be dependent on an inherent sense of approximate quantity. Children's number line placements are predicted to conform to the underlying properties of this system; specifically, placements are exaggerated for small numerals and compressed for larger ones. Alternative hypotheses…
Descriptors: Numbers, Number Concepts, Cognitive Development, Child Development
Hyde, Daniel C.; Simon, Charline E.; Berteletti, Ilaria; Mou, Yi – Developmental Science, 2017
Two non-verbal cognitive systems, an approximate number system (ANS) for extracting the numerosity of a set and a parallel individuation (PI) system for distinguishing between individual items, are hypothesized to be foundational to symbolic number and mathematics abilities. However, the exact role of each remains unclear and highly debated. Here…
Descriptors: Cognitive Ability, Mathematics Skills, Number Concepts, Computation
Edwards, Laura A.; Wagner, Jennifer B.; Simon, Charline E.; Hyde, Daniel C. – Developmental Science, 2016
Humans are born with the ability to mentally represent the approximate numerosity of a set of objects, but little is known about the brain systems that sub-serve this ability early in life and their relation to the brain systems underlying symbolic number and mathematics later in development. Here we investigate processing of numerical magnitudes…
Descriptors: Neurological Organization, Brain, Infants, Spectroscopy
Park, Joonkoo; Li, Rosa; Brannon, Elizabeth M. – Developmental Science, 2014
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…
Descriptors: Brain, Numbers, Cognitive Processes, Mathematics Achievement
Siegler, Robert S. – Developmental Science, 2016
The integrated theory of numerical development posits that a central theme of numerical development from infancy to adulthood is progressive broadening of the types and ranges of numbers whose magnitudes are accurately represented. The process includes four overlapping trends: (1) representing increasingly precisely the magnitudes of non-symbolic…
Descriptors: Numbers, Theories, Individual Development, Symbols (Mathematics)
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