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Σάββατο 14 Οκτωβρίου 2017

Data-driven heterogeneity in mathematical learning disabilities based on the triple code model

Publication date: December 2017
Source:Research in Developmental Disabilities, Volume 71
Author(s): Christian Peake, Juan E. Jiménez, Cristina Rodríguez
Many classifications of heterogeneity in mathematical learning disabilities (MLD) have been proposed over the past four decades, however no empirical research has been conducted until recently, and none of the classifications are derived from Triple Code Model (TCM) postulates. The TCM proposes MLD as a heterogeneous disorder, with two distinguishable profiles: a representational subtype and a verbal subtype. A sample of elementary school 3rd to 6th graders was divided into two age cohorts (3rd − 4th grades, and 5th − 6th grades). Using data-driven strategies, based on the cognitive classification variables predicted by the TCM, our sample of children with MLD clustered as expected: a group with representational deficits and a group with number-fact retrieval deficits. In the younger group, a spatial subtype also emerged, while in both cohorts a non-specific cluster was produced whose profile could not be explained by this theoretical approach.

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