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Naturalistic Decision Making in Power Grid Operations: Implications for Dispatcher Training and Usability Testing
[摘要] The focus of the present study is on improved training approaches to accelerate learning and improved methods for analyzing effectiveness of tools within a high-fidelity power grid simulated environment. A theory-based model has been developed to document and understand the mental processes that an expert power system operator uses when making critical decisions. The theoretical foundation for the method is based on the concepts of situation awareness, the methods of cognitive task analysis, and the naturalistic decision making (NDM) approach of Recognition Primed Decision Making. The method has been systematically explored and refined as part of a capability demonstration of a high-fidelity real-time power system simulator under normal and emergency conditions. To examine NDM processes, we analyzed transcripts of operator-to-operator conversations during the simulated scenario to reveal and assess NDM-based performance criteria. The results of the analysis indicate that the proposed framework can be used constructively to map or assess the Situation Awareness Level of the operators at each point in the scenario. We can also identify the mental models and mental simulations that the operators employ at different points in the scenario. This report documents the method, describes elements of the model, and provides appendices that document the simulation scenario and the associated mental models used by operators in the scenario.
[发布日期] 2008-11-17 [发布机构] 
[效力级别]  [学科分类] 电力
[关键词] DECISION MAKING;LEARNING;PERFORMANCE;POWER SYSTEMS;SIMULATION;SIMULATORS;TESTING;TRAINING situation awareness;power grid operations;decision making [时效性] 
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