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  1. Knowing and using concepts.Lyle E. Bourne - 1970 - Psychological Review 77 (6):546-556.
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  • Searching for objects in real-world scenes.Irving Biederman, Arnold L. Glass & E. Webb Stacy - 1973 - Journal of Experimental Psychology 97 (1):22.
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  • Distinctive features, categorical perception, and probability learning: Some applications of a neural model.James A. Anderson, Jack W. Silverstein, Stephen A. Ritz & Randall S. Jones - 1977 - Psychological Review 84 (5):413-451.
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  • Visual routines.Shimon Ullman - 1984 - Cognition 18 (1-3):97-159.
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  • Feature analysis in early vision: Evidence from search asymmetries.Anne Treisman & Stephen Gormican - 1988 - Psychological Review 95 (1):15-48.
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  • Image-based object recognition in man, monkey and machine.Michael J. Tarr & Heinrich H. Bülthoff - 1998 - Cognition 67 (1-2):1-20.
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  • Episodic theory of the dynamics of spatial attention.George Sperling & Erich Weichselgartner - 1995 - Psychological Review 102 (2):503-532.
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  • Change blindness.Daniel J. Simons & Daniel T. Levin - 1997 - Trends in Cognitive Sciences 1 (1):241-82.
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  • Using reinforcement learning to understand the emergence of "intelligent" eye-movement behavior during reading.Erik D. Reichle & Patryk A. Laurent - 2006 - Psychological Review 113 (2):390-408.
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  • The e-z reader model of eye-movement control in reading: Comparisons to other models.Erik D. Reichle, Keith Rayner & Alexander Pollatsek - 2003 - Behavioral and Brain Sciences 26 (4):445-476.
    The E-Z Reader model (Reichle et al. 1998; 1999) provides a theoretical framework for understanding how word identification, visual processing, attention, and oculomotor control jointly determine when and where the eyes move during reading. In this article, we first review what is known about eye movements during reading. Then we provide an updated version of the model (E-Z Reader 7) and describe how it accounts for basic findings about eye movement control in reading. We then review several alternative models of (...)
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  • Area activation: a computational model of saccadic selectivity in visual search.Marc Pomplun, Eyal M. Reingold & Jiye Shen - 2003 - Cognitive Science 27 (2):299-312.
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  • Respects for similarity.Douglas L. Medin, Robert L. Goldstone & Dedre Gentner - 1993 - Psychological Review 100 (2):254-278.
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  • Review of The Computational Brain by Patricia S. Churchland and Terrence J. Sejnowski. [REVIEW]Brian P. McLaughlin - 1996 - Philosophy of Science 63 (1):137-139.
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  • Eye movements during visual search and memory search.John D. Gould - 1973 - Journal of Experimental Psychology 98 (1):184.
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  • Separation of low-level and high-level factors in complex tasks: Visual search.Wilson S. Geisler & Kee-Lee Chou - 1995 - Psychological Review 102 (2):356-378.
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  • A model of saccade generation based on parallel processing and competitive inhibition.John M. Findlay & Robin Walker - 1999 - Behavioral and Brain Sciences 22 (4):661-674.
    During active vision, the eyes continually scan the visual environment using saccadic scanning movements. This target article presents an information processing model for the control of these movements, with some close parallels to established physiological processes in the oculomotor system. Two separate pathways are concerned with the spatial and the temporal programming of the movement. In the temporal pathway there is spatially distributed coding and the saccade target is selected from a Both pathways descend through a hierarchy of levels, the (...)
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  • Preattentive recovery of three-dimensional orientation from line drawings.James T. Enns & Ronald A. Rensink - 1991 - Psychological Review 98 (3):335-351.
    It has generally been assumed that rapid visual search is based on simple features and that spatial relations between features are irrelevant for this task. Seven experiments involving search for line drawings contradict this assumption; a major determinant of search is the presence of line junctions. Arrow- and Y-junctions were detected rapidly in isolation and when they were embedded in drawings of rectangular polyhedra. Search for T-junctions was considerably slower. Drawings containing T-junctions often gave rise to very slow search even (...)
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  • SWIFT: A Dynamical Model of Saccade Generation During Reading.Ralf Engbert, Antje Nuthmann, Eike M. Richter & Reinhold Kliegl - 2005 - Psychological Review 112 (4):777-813.
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  • Finding Structure in Time.Jeffrey L. Elman - 1990 - Cognitive Science 14 (2):179-211.
    Time underlies many interesting human behaviors. Thus, the question of how to represent time in connectionist models is very important. One approach is to represent time implicitly by its effects on processing rather than explicitly (as in a spatial representation). The current report develops a proposal along these lines first described by Jordan (1986) which involves the use of recurrent links in order to provide networks with a dynamic memory. In this approach, hidden unit patterns are fed back to themselves: (...)
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  • Visual search and stimulus similar¬ity.John Duncan & Glyn W. Humphreys - 1989 - Psychological Review 96 (3):433-458.
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  • Attention and Effort.Daniel Kahneman - 1973 - Prentice-Hall.
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  • Color Vision.Leo Maurice Hurvich - 1981 - Sinauer Associates.
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  • Attention improves or impairs visual performance by enhancing spatial resolution.Y. Yeshurun & M. Carrasco - 1998 - Nature 396:72-75.
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  • Beyond capacity: A functional view of attention.O. Neumann - 1987 - In H. Heuer & A. F. Sanders (eds.), Perspectives on Perception and Action. Erlbaum.
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  • Components of visual orienting.M. I. Posner & Y. Cohen - 1984 - Attention and Performance X 32:531-556.
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  • Computational modelling of visual attention.L. Itti & C. Koch - 2001 - Nature Reviews Neuroscience 2 (3):194-203.
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  • Attention to action: willed and automatic control of behavior.D. Norman & T. Shallice - 1986 - In R. Davidson, R. Schwartz & D. Shapiro (eds.), Consciousness and Self-Regulation: Advances in Research and Theory IV. Plenum Press.
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  • Patterns of Eye Movements During Parallel and Serial Visual Search Tasks.Diane E. Williams - unknown
    Abstnn Eye movements were monitored while subjects performed parallel and serial sarah tasks. In Experiment la, subjects searched for an “O' among "X"s (parallel condition) and for a 'T" among "L"s (serial condition). In the parallel condition of Eqcriment lb, “q)" was the target and “O"s were distractors; in the serial condition, time..
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  • Similarity involving attributes and relations: Judgments of similarity and difference are not inverses.D. L. Medin, R. L. Goldstone & D. Gentner - 1990 - Psychological Science 1:64-69.
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  • Selection for action: Some behavioral and neurophysiological considerations of attention and action.D. A. Allport - 1987 - In H. Heuer & H. F. Sanders (eds.), Perspectives on Perception and Action. Lawerence Erlbaum. pp. 395–419.
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  • Neural mechanisms of selective visual attention.R. Desimone & J. Duncan - 1995 - Annual Review of Neuroscience 18 (1):193-222.
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  • Observations on cortical mechanisms for object recognition and learning.Tomaso Poggio & Anya Hurlbert - 1994 - In Christof Koch & J. Davis (eds.), Large-Scale Neuronal Theories of the Brain. MIT Press. pp. 153--182.
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  • Visual Search: The role of memory for rejected distractors.Todd S. Horowitz & J. M. Wolfe - 2005 - In Laurent Itti, Geraint Rees & John K. Tsotsos (eds.), Neurobiology of Attention. Academic Press. pp. 264.
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  • Orienting of attention.M. I. Posner - 1980 - Quarterly Journal of Experimental Psychology 32 (1):3-25.
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  • {Finding structure in time}.J. Elman - 1993 - {Cognitive Science} 48:71-99.
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  • A feature integration theory of attention.Anne Treisman - 1980 - Cognitive Psychology 12:97-136.
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  • Search asymmetry: a diagnostic for preattentive processing of separable features.Anne Treisman & Janet Souther - 1985 - Journal of Experimental Psychology 114 (3).
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  • Natural Categories.Eleanor Rosch - 1973 - Cognitive Psychology 4 (3):328-350.
    The hypothesis of the study was that the domains of color and form are structured into nonarbitrary, semantic categories which develop around perceptually salient “natural prototypes.” Categories which reflected such an organization (where the presumed natural prototypes were central tendencies of the categories) and categories which violated the organization (natural prototypes peripheral) were taught to a total of 162 members of a Stone Age culture which did not initially have hue or geometric-form concepts. In both domains, the presumed “natural” categories (...)
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  • Specifying the components of attention in a visual search task.Gregory J. Zelinsky - 2005 - In Laurent Itti, Geraint Rees & John K. Tsotsos (eds.), Neurobiology of Attention. Academic Press. pp. 395--400.
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