Publication | Closed Access
Toward an instance theory of automatization.
3.4K
Citations
91
References
1988
Year
EngineeringCognitionInstance TheorySocial SciencesInformation RetrievalData ScienceNovice PerformanceJust-in-time LearningLearning ProblemCognitive ScienceKnowledge AcquisitionKnowledge RetrievalKnowledge DiscoveryStandard DeviationLearning AnalyticsComputer ScienceAutomated Knowledge AcquisitionAutomated ReasoningFormal MethodsAutomaton OperationKnowledge ManagementAdaptive LearningDomainspecisc Knowledge Base
This article presents a theory in which automatization is construed as the acquisition of a domainspeciSc knowledge base, formed of separate representations, instances, of each exposure to the task. Processing is considered automatic if it relies on retrieval of stored instances, which will occur only after practice in a consistent environment. Practice is important because it increases the amount retrieved and the speed of retrieval; consistency is important because it ensures that the retrieved instances will be useful. The theory accounts quantitatively for the power-function speed-up and predicts a power-function reduction in the standard deviation that is constrained to have the same exponent as the power function for the speed-up. The theory accounts for qualitative properties as well, explaining how some may disappear and others appear with practice. More generally, it provides an alternative to the modal view of automaticity, arguing that novice performance is limited by a lack of knowledge rather than a scarcity of resources. The focus on learning avoids many problems with the modal view that stem from its focus on resource limitations.
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