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Lei, Xuehui; Mou, Weimin – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2022
This study investigated to what extent people can develop global spatial representations of a multiroom environment through one-shot physical walking between rooms. In Experiment 1, the participants learned objects' locations in one room of an immersive virtual environment. They were blindfolded and led to walk to a testing position either within…
Descriptors: Memory, Spatial Ability, Computer Simulation, Simulated Environment
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Strickrodt, Marianne; Bülthoff, Heinrich H.; Meilinger, Tobias – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2019
Objects learned within single enclosed spaces (e.g., rooms) can be represented within a single reference frame. Contrarily, the representation of navigable spaces (multiple interconnected enclosed spaces) is less well understood. In this study we examined different levels of integration within memory (local, regional, global), when learning object…
Descriptors: Memory, Navigation, Spatial Ability, Simulated Environment
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Huang, Zhenzhen; Hu, Qingfen; Shao, Yi – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2017
Previous research in spatial reorientation, which only presented the target location in the corner, has found that adults weighed angles more than wall lengths. We proposed that in previous research, angular cues were available for direct use whereas length cues had to be associated with the left/right sense. We thus investigated whether the…
Descriptors: Geometric Concepts, Cues, Spatial Ability, Orientation
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Weisberg, Steven M.; Schinazi, Victor R.; Newcombe, Nora S.; Shipley, Thomas F.; Epstein, Russell A. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2014
There are marked individual differences in the formation of cognitive maps both in the real world and in virtual environments (VE; e.g., Blajenkova, Motes, & Kozhevnikov, 2005; Chai & Jacobs, 2010; Ishikawa & Montello, 2006; Wen, Ishikawa, & Sato, 2011). These differences, however, are poorly understood and can be difficult to…
Descriptors: Experimental Psychology, Cognitive Mapping, Individual Differences, Simulated Environment
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Weisberg, Steven M.; Newcombe, Nora S. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2016
Research on the existence of cognitive maps and on the cognitive processes that support effective navigation has often focused on functioning across individuals. However, there are pronounced individual differences in navigation proficiency, which need to be explained and which can illuminate our understanding of cognitive maps and effective…
Descriptors: Cognitive Mapping, Cognitive Processes, Short Term Memory, Individual Differences
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Mou, Weimin; Zhou, Ruojing – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2013
Four experiments examined the roles of extended surfaces and the number of points in the boundary superiority effect in goal localization. Participants learned the locations of 4 objects in the presence of a boundary, landmarks, or both in an immersive virtual environment by reproducing the locations with feedback. Participants then localized the…
Descriptors: Experimental Psychology, Feedback (Response), Geographic Location, Memory
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Han, Xue; Becker, Suzanna – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2014
We investigated how humans encode large-scale spatial environments using a virtual taxi game. We hypothesized that if 2 connected neighborhoods are explored jointly, people will form a single integrated spatial representation of the town. However, if the neighborhoods are first learned separately and later observed to be connected, people will…
Descriptors: Cognitive Processes, Spatial Ability, Simulated Environment, Video Games
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Alexander, Tim; Wilson, Stuart P.; Wilson, Paul N. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2009
Using desktop, computer-simulated virtual environments (VEs), the authors conducted 5 experiments to investigate blocking of learning about a goal location based on Shape B as a consequence of preliminary training to locate that goal using Shape A. The shapes were large 2-dimensional horizontal figures on the ground. Blocking of spatial learning…
Descriptors: Discrimination Learning, Simulated Environment, Geometric Concepts, Spatial Ability