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Negen, James; Sandri, Angela; Lee, Sang Ah; Nardini, Marko – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2020
Large walls and other typical boundaries strongly influence neural activity related to navigation and the representations of spatial layouts. They are also major aids to reliable navigation behavior in young children and nonhuman animals. Is this because they are physical boundaries (barriers to movement), or because they present certain visual…
Descriptors: Spatial Ability, Memory, Navigation, Computer Simulation
Lei, Xuehui; Mou, Weimin; Zhang, Lei – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2020
This study investigated the extent to which people can develop a global representation of local environments through across-boundary navigation. Participants learned objects' locations in two misaligned rectangular rooms in an immersive virtual environment. After learning, they adopted a local view in one room and judged directions of objects…
Descriptors: Spatial Ability, Computer Simulation, Navigation, Learning Processes
Forloines, Martha R.; Reid, Meredith A.; Thompkins, Andie M.; Robinson, Jennifer L.; Katz, Jeffrey S. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2019
There are mixed results regarding the differentiation of neurofunctional correlates of spatial abilities. Previous studies employed complex environments or alternate memory tasks which could potentially add to inconsistencies across studies of navigation. To help elucidate the existing mixed findings, we conducted a study in a simplistic…
Descriptors: Computer Simulation, Brain Hemisphere Functions, Task Analysis, Cues
Starrett, Michael J.; Stokes, Jared D.; Huffman, Derek J.; Ferrer, Emilio; Ekstrom, Arne D. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2019
An important question regards how we use environmental boundaries to anchor spatial representations during navigation. Behavioral and neurophysiological models appear to provide conflicting predictions, and this question has been difficult to answer because of technical challenges with testing navigation in novel, large-scale, realistic spatial…
Descriptors: Spatial Ability, Computer Simulation, Prediction, Structural Equation Models
He, Qiliang; McNamara, Timothy P.; Bodenheimer, Bobby; Klippel, Alexander – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2019
In the current study, we investigated the ways in which the acquisition and transfer of spatial knowledge were affected by (a) the type of spatial relations predominately experienced during learning (routes determined by walkways vs. straight-line paths between locations); (b) environmental complexity; and (c) the availability of rotational…
Descriptors: Transfer of Training, Spatial Ability, Computer Simulation, Retailing
Kelly, Jonathan W.; Carpenter, Shana K.; Sjolund, Lori A. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2015
Studies of the "testing effect" have shown that retrieval significantly improves learning. However, most of these studies have been restricted to simple types of declarative verbal knowledge. Five experiments were designed to explore whether testing improves acquisition of route knowledge, which has a procedural component consisting of…
Descriptors: Computer Simulation, Task Analysis, Geographic Information Systems, Recall (Psychology)
Buckley, Matthew G.; Smith, Alastair D.; Haselgrove, Mark – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2014
An influential theory of spatial navigation states that the boundary shape of an environment is preferentially encoded over and above other spatial cues, such that it is impervious to interference from alternative sources of information. We explored this claim with 3 intradimensional--extradimensional shift experiments, designed to examine the…
Descriptors: Spatial Ability, Navigation, Cues, Associative Learning
Chrastil, Elizabeth R.; Warren, William H. – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2013
It seems intuitively obvious that active exploration of a new environment would lead to better spatial learning than would passive visual exposure. It is unclear, however, which components of active learning contribute to spatial knowledge, and previous literature is decidedly mixed. This experiment tests the contributions of 4 components to…
Descriptors: Spatial Ability, Navigation, Video Technology, Decision Making