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Alcohol expectancy multiaxial assessment: a memory network-based approach
Authors:Goldman Mark S  Darkes Jack
Affiliation:Department of Psychology, University of South Florida, Tampa, FL 33620-8200, USA. goldman@cas.usf.edu
Abstract:Despite several decades of activity, alcohol expectancy research has yet to merge measurement approaches with developing memory theory. This article offers an expectancy assessment approach built on a conceptualization of expectancy as an information processing network. The authors began with multidimensional scaling models of expectancy space, which served as heuristics to suggest confirmatory factor analytic dimensional models for entry into covariance structure predictive models. It is argued that this approach permits a relatively thorough assessment of the broad range of potential expectancy dimensions in a format that is very flexible in terms of instrument length and specificity versus breadth of focus.
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