The Cognitive and Neural Architecture of Sequence Representation.

The authors theorize that 2 neurocognitive sequence-learning systems can be distinguished in serial reaction time experiments, one dorsal (parietal and supplementary motor cortex) and the other ventral (temporal and lateral prefrontal cortex). Dorsal system learning is implicit and associates noncat...

Descripción completa

Detalles Bibliográficos
Publicado en:Psychological Review Vol. 110; no. 2; pp. 316 - 340
Autores principales: Keele, Steven W., Mayr, Ulrich, Ivry, Richard
Formato: Artículo
Publicado: American Psychological Association April 2003
Materias:
Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:The authors theorize that 2 neurocognitive sequence-learning systems can be distinguished in serial reaction time experiments, one dorsal (parietal and supplementary motor cortex) and the other ventral (temporal and lateral prefrontal cortex). Dorsal system learning is implicit and associates noncategorized stimuli within dimensional modules. Ventral system learning can be implicit or explicit. It also allows associating events across dimensions and therefore is the basis of cross-task integration or interference, depending on degree of cross-task correlation of signals. Accordingly, lack of correlation rather than limited capacity is responsible for dual-task effects on learning. The theory is relevant to issues of attentional effects on learning; the representational basis of complex, sequential skills; hippocampalversus basal ganglia-based learning; procedural versus declarative memory; and implicit versus explicit memory. Reprinted by permission of the publisher.