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Approaches to Cognitive Modeling in Dynamic Systems Control
[摘要] Much of human decision making occurs in dynamic situations where decision makers have to control a number of interrelated elements (dynamic systems control). Although in recent years progress has been made toward assessing individual differences in control performance, the cognitive processes underlying exploration and control of dynamic systems are not yet well understood. In this perspectives article we examine the contribution of different approaches to modeling cognition in dynamic systems control, including instance-based learning, heuristic models, complex knowledge-based models and models of causal learning. We conclude that each approach has particular strengths in modeling certain aspects of cognition in dynamic systems control. In particular, Bayesian models of causal learning and hybrid models combining heuristic strategies with reinforcement learning appear to be promising avenues for further work in this field.
[发布日期]  [发布机构] 
[效力级别]  [学科分类] 心理学(综合)
[关键词] dynamic decision making;complex problem solving;cognitive modeling;instance-based learning;heuristics;causal learning [时效性] 
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