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Changing viewer perspectives reveals constraints to implicit visual statistical learning

机译:改变观看者的视角揭示了隐式视觉统计学习的限制

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摘要

Statistical learning—learning environmental regularities to guide behavior—likely plays an important role in natural human behavior. One potential use is in search for valuable items. Because visual statistical learning can be acquired quickly and without intention or awareness, it could optimize search and thereby conserve energy. For this to be true, however, visual statistical learning needs to be viewpoint invariant, facilitating search even when people walk around. To test whether implicit visual statistical learning of spatial information is viewpoint independent, we asked participants to perform a visual search task from variable locations around a monitor placed flat on a stand. Unbeknownst to participants, the target was more often in some locations than others. In contrast to previous research on stationary observers, visual statistical learning failed to produce a search advantage for targets in high-probable regions that were stable within the environment but variable relative to the viewer. This failure was observed even when conditions for spatial updating were optimized. However, learning was successful when the rich locations were referenced relative to the viewer. We conclude that changing viewer perspective disrupts implicit learning of the target's location probability. This form of learning shows limited integration with spatial updating or spatiotopic representations.
机译:统计学习(学习环境规律以指导行为)可能在人类自然行为中发挥重要作用。一种潜在的用途是寻找有价值的物品。因为视觉统计学习可以快速获得,而无需意图或意识,所以它可以优化搜索,从而节省能量。为了使这一点成为现实,视觉统计学习必须是视点不变的,即使在人们走动时也要便于搜索。为了测试空间信息的隐式视觉统计学习是否独立于视点,我们要求参与者从放置在架子上的显示器周围的可变位置执行视觉搜索任务。参与者不知道,目标通常在某些地方比在其他地方更多。与先前关于固定观测器的研究相反,视觉统计学习未能在环境中稳定但相对于观察者可变的高概率区域中的目标上产生搜索优势。即使优化了空间更新的条件,也观察到了此故障。但是,相对于观看者参考丰富位置时,学习是成功的。我们得出结论,改变观看者的视角会破坏目标位置概率的隐式学习。这种学习形式显示出与空间更新或空间特征表示形式的有限集成。

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