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Insight and strategy in multiple-cue learning

机译:多重提示学习中的洞察力与策略

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In multiple-cue learning (also known as probabilistic category learning) people acquire information about cue-outcome relations and combine these into predictions or judgments. Previous researchers claimed that people can achieve high levels of performance without explicit knowledge of the task structure or insight into their own judgment policies. It has also been argued that people use a variety of suboptimal strategies to solve such tasks. In three experiments the authors reexamined these conclusions by introducing novel measures of task knowledge and self-insight and using "rolling regression" methods to analyze individual learning. Participants successfully learned a four-cue probabilistic environment and showed accurate knowledge of both the task structure and their own judgment processes. Learning analyses suggested that the apparent use of suboptimal strategies emerges from the incremental tracking of statistical contingencies in the environment.
机译:在多重提示学习(也称为概率类别学习)中,人们获取有关CUE-结果关系的信息,并将这些与预测或判断结合在一起。 以前的研究人员声称,人们可以在没有明确了解任务结构或洞察自己的判断政策的情况下实现高度的表现。 还有人认为,人们使用各种次优策略来解决这些任务。 在三个实验中,作者通过引入任务知识和自我见解的新措施并使用“滚动回归”方法来审视这些结论来分析个人学习。 与会者成功学习了四个提示概率环境,并表明了对任务结构和自身判断过程的准确了解。 学习分析表明,次优策略的表观使用从环境中的统计突发事件的增量跟踪中出现。

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