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首页> 外文期刊>Frontiers in Psychology >Studying Different Tasks of Implicit Learning across Multiple Test Sessions Conducted on the Web
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Studying Different Tasks of Implicit Learning across Multiple Test Sessions Conducted on the Web

机译:在Web上进行的多个测试会话中研究内隐学习的不同任务

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Implicit learning is usually studied through individual performance on a single task, with the most common tasks being the Serial Reaction Time (SRT) task, the Dynamic System Control (DSC) task, and Artificial Grammar Learning (AGL). Few attempts have been made to compare performance across different implicit learning tasks within the same study. The current study was designed to explore the relationship between performance on the DSC Sugar factory task and the Alternating Serial Reaction Time (ASRT) task. We also addressed another limitation of traditional implicit learning experiments, namely that implicit learning is usually studied in laboratory settings over a restricted time span lasting for less than an hour. In everyday situations, implicit learning is assumed to involve a gradual accumulation of knowledge across several learning episodes over a longer time span. One way to increase the ecological validity of implicit learning experiments could be to present the learning material repeatedly across shorter test sessions. This can most easily be done by using a web-based setup in which participants can access the material from home. We therefore created an online web-based system for measuring implicit learning that could be administered in either single or multiple sessions. Participants (n = 66) were assigned to either a single session or a multiple session condition. Learning occurred on both tasks, and awareness measures suggested that acquired knowledge was not fully conscious on either of the tasks. Learning and the degree of conscious awareness of the learned regularities were compared across conditions and tasks. On the DSC task, performance was not affected by whether learning had taken place in one or over multiple sessions. On the ASRT task, RT improvement across blocks was larger in the multiple-session condition. Learning in the two tasks was not related.
机译:隐式学习通常通过单个任务的个人表现来研究,最常见的任务是串行反应时间(SRT)任务,动态系统控制(DSC)任务和人工语法学习(AGL)。很少有人尝试比较同一项研究中不同隐式学习任务的表现。当前的研究旨在探究DSC Sugar工厂任务上的性能与交替序列反应时间(ASRT)任务之间的关系。我们还解决了传统隐式学习实验的另一个局限性,即,隐式学习通常是在实验室环境中,在不到一个小时的有限时间内进行的。在日常情况下,假定隐性学习涉及在较长时间跨多个学习情节中逐渐积累的知识。提高隐式学习实验的生态有效性的一种方法是,在较短的测试时间内重复展示学习材料。通过使用基于Web的设置,参与者可以在家中轻松地访问资料,这可以最轻松地完成。因此,我们创建了一个基于Web的在线系统,用于测量可以在单个或多个会话中进行管理的隐式学习。参与者(n = 66)被分配到单个会话或多个会话条件。在这两个任务上都发生了学习,认识措施表明,所获得的知识对这两个任务都不是完全意识到的。比较了各种条件和任务的学习情况和学习规律的自觉意识程度。在DSC任务上,学习不受在一个或多个会话中进行的学习影响。在ASRT任务上,在多会话条件下,跨块的RT改进更大。在这两个任务中学习并不相关。

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