Publication | Open Access
Calibration of skill and judgment in driving: Development of a conceptual framework and the implications for road safety
86
Citations
60
References
2015
Year
EngineeringMomentary Demand RegulationBehavioral Decision MakingSafety ScienceTraffic EnforcementCognitionHuman Performance ModelingAdvanced Driver-assistance SystemInjury PreventionAutonomySocial SciencesPsychologyDriver BehaviorAvailable InformationDecision TheoryRoad SafetyCognitive ScienceTraffic SafetyBehavioral SciencesOwn AbilityRoad Traffic SafetyAutonomous DrivingDriver PerformanceAutomationConceptual FrameworkDecision Science
Humans often make inflated or erroneous estimates of their own ability or performance. Such errors in calibration can be due to incomplete processing, neglect of available information or due to improper weighing or integration of the information and can impact our decision-making, risk tolerance, and behaviors. In the driving context, these outcomes can have important implications for safety. The current paper discusses the notion of calibration in the context of self-appraisals and self-competence as well as in models of self-regulation in driving. We further develop a conceptual framework for calibration in the driving context borrowing from earlier models of momentary demand regulation, information processing, and lens models for information selection and utilization. Finally, using the model we describe the implications for calibration (or, more specifically, errors in calibration) for our understanding of driver distraction, in-vehicle automation and autonomous vehicles, and the training of novice and inexperienced drivers.
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