Related Experiment Video
Updated: Sep 23, 2026

Multimedia Battery for Assessment of Cognitive and Basic Skills in Mathematics (BM-PROMA)
Published on: August 28, 2021
Uncovering latent cognitive, metacognitive, and neural bases of problem-solving deficits in children with
O H M Lasnick1, Yunji Park2, Percy Mistry2
1Department of Psychiatry & Behavioral Sciences, Stanford University, Stanford, California, CA, 94305, US ohml@stanford.edu menon@stanford.edu.
Abstract:
Developmental dyscalculia (DD) affects 7-10% of children and is characterized by persistent difficulties in arithmetic problem-solving, which depends on the dynamic interplay between cognitive and metacognitive control processes governing strategy execution and selection. Conventional behavioral and neuroimaging approaches do not simultaneously quantify these latent processes and link them to distributed neural mechanisms, leaving the neurocognitive and metacognitive underpinnings of DD insufficiently characterized. To address this gap, we integrated Bayesian computational modeling with whole-brain decoding to uncover the cognitive, metacognitive, and neural bases of problem-solving deficits in DD using a sample of 68 children aged 8-10 years (38 female). Children with DD showed deficits across all problem-solving strategies (counting, retrieval, and decomposition), indicating reduced strategy execution efficiency. They also exhibited significant metacognitive impairments: longer baseline switching times between strategies, reduced sensitivity to problem difficulty, and lower adaptivity in selecting optimal strategies. Whole-brain ElasticNet decoding accurately distinguished DD from TA peers based on distributed activation patterns across frontoparietal cortex, hippocampus, and ventral-visual regions, whereas univariate approaches did not. Linear multivariate brain-behavioral analyses and nonlinear transformer-based predictions converged in showing that these distributed signatures predicted counting efficiency and switching sensitivity. Notably, brain-behavior relations reversed in direction between groups, positive in TA children but negative in DD, most strikingly in the hippocampus. These findings demonstrate that arithmetic difficulties in DD arise from deficits in both strategy execution efficiency and metacognitive control, reflecting an altered mapping between distributed neural activity, and highlight the power of integrating computational modeling with brain-wide decoding to understand learning disabilities.Significance Statement Developmental dyscalculia affects 7-10% of children, yet underlying mechanisms remain poorly understood. We integrated Bayesian computational modeling with whole-brain decoding to demonstrate that children with dyscalculia exhibit deficits in both strategy execution efficiency (counting, retrieval, decomposition) and metacognitive control (strategy switching, adaptive strategy selection). Using brain-wide decoding, we identified distributed neural signatures across frontoparietal, hippocampal, and visual regions that distinguished dyscalculia from typically-developing children, patterns undetectable by conventional approaches. These neural signatures predicted strategy selection and execution. Our findings demonstrate that developmental dyscalculia reflects cognitive and neural dysfunction across multiple processes, highlighting the power of combining computational modeling with multivariate neuroimaging analysis for understanding individual variability in learning disabilities.
More Related Videos
10:26Problem-Solving Before Instruction (PS-I): A Protocol for Assessment and Intervention in Students with Different Abilities
Published on: September 11, 2021
12:55Multimodal Protocol for Assessing Metacognition and Self-Regulation in Adults with Learning Difficulties
Published on: September 27, 2020
Related Concept Videos
Learning Disabilities
Dyslexia
Dyslexia is a...
Information Processing Approach
Cognitive Learning
E. C. Tolman's theory of purposive behavior emphasizes that much behavior is goal-directed. He argued that to understand behavior, we must look at the entire sequence of actions leading to a goal. For instance, high school students study hard, not just due to past reinforcement but also to achieve the goal of getting into a good college.
Tolman introduced the idea that behavior is influenced by...
Piaget's Stage 3 of Cognitive Development
Conservation and Constancy of Quantity
A significant cognitive milestone in the concrete...
Metacognition
Cognitive Development During Adolescence