Attentional Selection
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[1] L. Chelazzi,et al. Rewards teach visual selective attention , 2013, Vision Research.
[2] Dirk Kerzel,et al. The distractor positivity (Pd) signals lowering of attentional priority: evidence from event-related potentials and individual differences. , 2014, Psychophysiology.
[3] D. Kahneman,et al. The cost of visual filtering. , 1983, Journal of experimental psychology. Human perception and performance.
[4] M. Chun,et al. Top-Down Attentional Guidance Based on Implicit Learning of Visual Covariation , 1999 .
[5] Jeffrey D. Schall,et al. Prefrontal Control of Visual Distraction , 2017, Current Biology.
[6] S. Yantis,et al. Abrupt visual onsets and selective attention: Evidence from visual search. , 1984 .
[7] Jeffrey D. Schall,et al. Neural basis of saccade target selection in frontal eye field during visual search , 1993, Nature.
[8] S. Thorpe,et al. Investigating implicit statistical learning mechanisms through contextual cueing , 2015, Trends in Cognitive Sciences.
[9] N. Turk-Browne,et al. Attention Is Spontaneously Biased Toward Regularities , 2013, Psychological science.
[10] B. Wyble,et al. The attentional blink: Past, present, and future of a blind spot in perceptual awareness , 2010, Neuroscience & Biobehavioral Reviews.
[11] B. Staresina,et al. Mind the Gap: Binding Experiences across Space and Time in the Human Hippocampus , 2009, Neuron.
[12] Heleen A. Slagter,et al. Learning What Is Irrelevant or Relevant: Expectations Facilitate Distractor Inhibition and Target Facilitation through Distinct Neural Mechanisms , 2019, The Journal of Neuroscience.
[13] M. Bravo,et al. The role of attention in different visual-search tasks , 1992, Perception & psychophysics.
[14] Leonardo Chelazzi,et al. Dissociable Effects of Reward on Attentional Learning: From Passive Associations to Active Monitoring , 2011, PloS one.
[15] Jan Theeuwes,et al. Selection history: How reward modulates selectivity of visual attention , 2017, Psychonomic Bulletin & Review.
[16] Zhaoping Li. A saliency map in primary visual cortex , 2002, Trends in Cognitive Sciences.
[17] O. Hikosaka,et al. Functional territories in primate substantia nigra pars reticulata separately signaling stable and flexible values. , 2015, Journal of neurophysiology.
[18] Michele A. Basso,et al. Modulation of neuronal activity by target uncertainty , 1997, Nature.
[19] Steven J Luck,et al. Capture versus suppression of attention by salient singletons: Electrophysiological evidence for an automatic attend-to-me signal , 2010, Attention, perception & psychophysics.
[20] S. Yantis,et al. Uniqueness of abrupt visual onset in capturing attention , 1988, Perception & psychophysics.
[21] B. Anderson. Value-driven attentional capture in the auditory domain , 2016, Attention, perception & psychophysics.
[22] Dirk Kerzel,et al. Active suppression of salient-but-irrelevant stimuli does not underlie resistance to visual interference , 2016, Biological Psychology.
[23] O. Hikosaka,et al. Role of the basal ganglia in the control of purposive saccadic eye movements. , 2000, Physiological reviews.
[24] Christopher J. Mitchell,et al. Attention and associative learning in humans: An integrative review. , 2016, Psychological bulletin.
[25] Walter Schneider,et al. Controlled and automatic human information processing: II. Perceptual learning, automatic attending and a general theory. , 1977 .
[26] David E. Irwin,et al. Influence of attentional capture on oculomotor control. , 1999, Journal of experimental psychology. Human perception and performance.
[27] D. Simons,et al. Do New Objects Capture Attention? , 2005, Psychological science.
[28] Howard E Egeth,et al. The ignoring paradox: Cueing distractor features leads first to selection, then to inhibition of to-be-ignored items , 2012, Attention, perception & psychophysics.
[29] Patrik Vuilleumier,et al. Affective and motivational control of vision. , 2015, Current opinion in neurology.
[30] Marlene Behrmann,et al. Probability Cuing of Target Location Facilitates Visual Search Implicitly in Normal Participants and Patients with Hemispatial Neglect , 2002, Psychological science.
[31] Á. Kristjánsson. Priming in visual search: a spanner in the works for Theeuwes's bottom-up attention sweeps? , 2010, Acta psychologica.
[32] C. Constantinidis,et al. Bottom-Up and Top-Down Attention , 2014, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[33] B. Scholl,et al. The Automaticity of Visual Statistical Learning Statistical Learning , 2005 .
[34] Laurent Itti,et al. Superior colliculus neurons encode a visual saliency map during free viewing of natural dynamic video , 2017, Nature Communications.
[35] J. Theeuwes,et al. Abrupt onsets capture attention independent of top-down control settings , 2008, Perception & psychophysics.
[36] M. Chun,et al. Contextual Cueing: Implicit Learning and Memory of Visual Context Guides Spatial Attention , 1998, Cognitive Psychology.
[37] N. P. Bichot,et al. Priming in Macaque Frontal Cortex during Popout Visual Search: Feature-Based Facilitation and Location-Based Inhibition of Return , 2002, The Journal of Neuroscience.
[38] B. Postle,et al. Dissociation of human caudate nucleus activity in spatial and nonspatial working memory: an event-related fMRI study. , 1999, Brain research. Cognitive brain research.
[39] P. Holland,et al. Hippocampus and context in classical conditioning , 1999, Current Opinion in Neurobiology.
[40] J. Duncan. Two techniques for investigating perception without awareness , 1985, Perception & psychophysics.
[41] C. Eriksen,et al. Effects of noise letters upon the identification of a target letter in a nonsearch task , 1974 .
[42] Carly J. Leonard,et al. Direct Evidence for Active Suppression of Salient-but-Irrelevant Sensory Inputs , 2015, Psychological science.
[43] Daniel Västfjäll,et al. Auditory attentional selection is biased by reward cues , 2016, Scientific Reports.
[44] Jan Theeuwes,et al. What is top-down about contingent capture? , 2010, Attention, perception & psychophysics.
[45] Clayton Hickey,et al. Priming resolves perceptual ambiguity in visual search: Evidence from behaviour and electrophysiology , 2010, Vision Research.
[46] L. Chelazzi,et al. Behavioral/systems/cognitive Reward Changes Salience in Human Vision via the Anterior Cingulate , 2022 .
[47] S. Tipper,et al. Selective Reaching to Grasp: Evidence for Distractor Interference Effects , 1997 .
[48] T Kumada,et al. Limitations in attending to a feature value for overriding stimulus-driven interference , 1999, Perception & psychophysics.
[49] M. Peelen,et al. Neural Mechanisms of Incentive Salience in Naturalistic Human Vision , 2015, Neuron.
[50] Jan Theeuwes,et al. Reward alters the perception of time , 2016, Cognition.
[51] Hyoung F. Kim,et al. Distinct Basal Ganglia Circuits Controlling Behaviors Guided by Flexible and Stable Values , 2013, Neuron.
[52] D. Gaffan. Scene-Specific Memory for Objects: A Model of Episodic Memory Impairment in Monkeys with Fornix Transection , 1994, Journal of Cognitive Neuroscience.
[53] L. Squire,et al. Structure and function of declarative and nondeclarative memory systems. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[54] J. Theeuwes,et al. Attentional control during visual search: the effect of irrelevant singletons. , 1998, Journal of experimental psychology. Human perception and performance.
[55] L. Itti,et al. Mechanisms of top-down attention , 2011, Trends in Neurosciences.
[56] J. Saiki,et al. Task-irrelevant stimulus-reward association induces value-driven attentional capture , 2015, Attention, perception & psychophysics.
[57] Tom Beesley,et al. When goals conflict with values: counterproductive attentional and oculomotor capture by reward-related stimuli. , 2015, Journal of experimental psychology. General.
[58] Robert M. McPeek,et al. Saccades require focal attention and are facilitated by a short-term memory system , 1999, Vision Research.
[59] K. Nakayama,et al. Priming of popout: III. A short-term implicit memory system beneficial for rapid target selection , 2000 .
[60] L. Chelazzi,et al. Altering Spatial Priority Maps via Reward-Based Learning , 2014, The Journal of Neuroscience.
[61] S. Yantis,et al. Visual attention: control, representation, and time course. , 1997, Annual review of psychology.
[62] H. Eichenbaum,et al. The medial temporal lobe and recognition memory. , 2007, Annual review of neuroscience.
[63] A. Hillstrom. Repetition effects in visual search , 2000, Perception & psychophysics.
[64] Mark G. Stokes,et al. Selective inhibition of distracting input , 2017, Behavioural Brain Research.
[65] B. Anderson. The attention habit: how reward learning shapes attentional selection , 2016, Annals of the New York Academy of Sciences.
[66] Patryk A. Laurent,et al. Value-driven attentional capture , 2011, Proceedings of the National Academy of Sciences.
[67] J. Theeuwes,et al. Top-down versus bottom-up attentional control: a failed theoretical dichotomy , 2012, Trends in Cognitive Sciences.
[68] M. Goldberg,et al. Attention, intention, and priority in the parietal lobe. , 2010, Annual review of neuroscience.
[69] Jan Theeuwes,et al. Statistical regularities induce spatial as well as feature-specific suppression. , 2019, Journal of experimental psychology. Human perception and performance.
[70] J. C. Johnston,et al. Involuntary covert orienting is contingent on attentional control settings. , 1992, Journal of experimental psychology. Human perception and performance.
[71] I. Biederman,et al. Scene perception: Detecting and judging objects undergoing relational violations , 1982, Cognitive Psychology.
[72] K. Shapiro,et al. The attentional blink , 1997, Trends in Cognitive Sciences.
[73] Jillian H. Fecteau,et al. Salience, relevance, and firing: a priority map for target selection , 2006, Trends in Cognitive Sciences.
[74] Jan Theeuwes,et al. On the limits of top-down control of visual selection , 2011, Attention, perception & psychophysics.
[75] S. Yantis,et al. Stimulus-driven attentional capture: evidence from equiluminant visual objects. , 1994, Journal of experimental psychology. Human perception and performance.
[76] J. Raymond,et al. Selective Visual Attention and Motivation , 2009, Psychological science.
[77] R. Desimone,et al. Neural mechanisms of selective visual attention. , 1995, Annual review of neuroscience.
[78] Jan Theeuwes,et al. Value-modulated oculomotor capture by task-irrelevant stimuli is a consequence of early competition on the saccade map , 2016, Attention, Perception, & Psychophysics.
[79] K. Cave,et al. Spatial Attention in Visual Search for Features and Feature Conjunctions , 1995 .
[80] J. W. Aldridge,et al. Dissecting components of reward: 'liking', 'wanting', and learning. , 2009, Current opinion in pharmacology.
[81] R. Marois,et al. The attentional blink: A review of data and theory , 2009, Attention, perception & psychophysics.
[82] S. Vecera,et al. What are you looking at? Impaired ‘social attention’ following frontal-lobe damage , 2004, Neuropsychologia.
[83] J. Theeuwes. Perceptual selectivity is task dependent: evidence from selective search. , 1990, Acta psychologica.
[84] E D Sussman,et al. Driver inattention and highway safety , 1985 .
[85] J. Theeuwes. Exogenous and endogenous control of attention: The effect of visual onsets and offsets , 1991, Perception & psychophysics.
[86] Richard N Aslin,et al. Statistical learning of new visual feature combinations by infants , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[87] Andrew B. Leber,et al. It’s under control: Top-down search strategies can override attentional capture , 2006, Psychonomic bulletin & review.
[88] M. Corbetta,et al. Control of goal-directed and stimulus-driven attention in the brain , 2002, Nature Reviews Neuroscience.
[89] D. Schacter,et al. Priming and the Brain , 1998, Neuron.
[90] Steven J. Luck,et al. The Role of Inhibition in Avoiding Distraction by Salient Stimuli , 2018, Trends in Cognitive Sciences.
[91] Jan Theeuwes,et al. Target uncertainty does not lead to more distraction by singletons: Intertrial priming does , 2005, Perception & psychophysics.
[92] Sharon L. Thompson-Schill,et al. Visual statistical learning is not reliably modulated by selective attention to isolated events , 2015, Attention, perception & psychophysics.
[93] A. Schubö,et al. Intertrial priming due to distractor repetition is eliminated in homogeneous contexts , 2016, Attention, Perception, & Psychophysics.
[94] Jan Theeuwes,et al. Pavlovian reward learning underlies value driven attentional capture , 2016, Attention, perception & psychophysics.
[95] Andrew B. Leber,et al. Coordination of Voluntary and Stimulus-Driven Attentional Control in Human Cortex , 2005, Psychological science.
[96] Jan Theeuwes,et al. Endogenous and exogenous attention shifts are mediated by the same large-scale neural network , 2004, NeuroImage.
[97] Ulrich Ansorge,et al. The initial stage of visual selection is controlled by top-down task set: new ERP evidence , 2011, Attention, perception & psychophysics.
[98] R. Desimone,et al. Neural mechanisms for visual memory and their role in attention. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[99] S. Yantis,et al. Visual Attention: Bottom-Up Versus Top-Down , 2004, Current Biology.
[100] E. Miller,et al. Top-Down Versus Bottom-Up Control of Attention in the Prefrontal and Posterior Parietal Cortices , 2007, Science.
[101] B. Anderson,et al. On the relationship between value-driven and stimulus-driven attentional capture , 2019, Attention, Perception, & Psychophysics.
[102] L. Squire,et al. Preserved capacity for learning statistical regularities and directing selective attention after hippocampal lesions , 2019, Proceedings of the National Academy of Sciences.
[103] Jon Driver,et al. Attentional Preparation for a Lateralized Visual Distractor: Behavioral and fMRI Evidence , 2006, Journal of Cognitive Neuroscience.
[104] J. Theeuwes. Stimulus-driven capture and attentional set: selective search for color and visual abrupt onsets. , 1994, Journal of experimental psychology. Human perception and performance.
[105] E. Newport,et al. PSYCHOLOGICAL SCIENCE Research Article INCIDENTAL LANGUAGE LEARNING: Ustening (and Learning) out of the Comer of Your Ear , 2022 .
[106] Yuhong V. Jiang,et al. Habitual versus goal-driven attention , 2017, Cortex.
[107] J. Theeuwes,et al. Programming of endogenous and exogenous saccades: evidence for a competitive integration model. , 2002, Journal of experimental psychology. Human perception and performance.
[108] R. Aslin,et al. Statistical learning of higher-order temporal structure from visual shape sequences. , 2002, Journal of experimental psychology. Learning, memory, and cognition.
[109] R. Remington,et al. The Risks of Downplaying Top-Down Control , 2018, Journal of cognition.
[110] E. Thorndike. Animal Intelligence; Experimental Studies , 2009 .
[111] J. Wolfe,et al. Differential Electrophysiological Signatures of Semantic and Syntactic Scene Processing , 2013, Psychological science.
[112] G. Mangun,et al. The neural mechanisms of top-down attentional control , 2000, Nature Neuroscience.
[113] Barry Giesbrecht,et al. Neural evidence reveals the rapid effects of reward history on selective attention , 2015, Brain Research.
[114] J. Theeuwes. Top-down and bottom-up control of visual selection. , 2010, Acta psychologica.
[115] Steven J. Luck,et al. Combined Electrophysiological and Behavioral Evidence for the Suppression of Salient Distractors , 2018, Journal of Cognitive Neuroscience.
[116] Steven J. Luck,et al. “Top-down” Does Not Mean “Voluntary” , 2018, Journal of cognition.
[117] J. Wolfe. Everything is Foreseen, Yet Free will is Given (Mishna Avot 3:15) , 2018, Journal of cognition.
[118] C. Hickey,et al. Reward priming of temporal preparation , 2015 .
[119] R. Desimone,et al. Responses of Neurons in Inferior Temporal Cortex during Memory- Guided Visual Search , 1998 .
[120] V. Lamme,et al. The distinct modes of vision offered by feedforward and recurrent processing , 2000, Trends in Neurosciences.
[121] M. Hasselmo,et al. The hippocampus as an associator of discontiguous events , 1998, Trends in Neurosciences.
[122] A. Kingstone,et al. Attention to Arrows: Pointing to a New Direction , 2006, Quarterly journal of experimental psychology.
[123] R. Desimone,et al. Competitive Mechanisms Subserve Attention in Macaque Areas V2 and V4 , 1999, The Journal of Neuroscience.
[124] M. Behrmann,et al. Spatial probability as an attentional cue in visual search , 2005, Perception & psychophysics.
[125] Jan Theeuwes,et al. Designing Safe Road Systems: A Human Factors Perspective , 2012 .
[126] Jan Theeuwes,et al. Reward modulates oculomotor competition between differently valued stimuli , 2015, Vision Research.
[127] M. Paré,et al. Temporal processing of saccade targets in parietal cortex area LIP during visual search. , 2007, Journal of neurophysiology.
[128] B. Anderson,et al. On the value-dependence of value-driven attentional capture , 2017, Attention, Perception, & Psychophysics.
[129] D. E. Irwin,et al. Our Eyes do Not Always Go Where we Want Them to Go: Capture of the Eyes by New Objects , 1998 .
[130] R N Aslin,et al. Statistical Learning by 8-Month-Old Infants , 1996, Science.
[131] E. Keller,et al. Saccade target selection in the superior colliculus during a visual search task. , 2002, Journal of neurophysiology.
[132] K. Berridge,et al. What is the role of dopamine in reward: hedonic impact, reward learning, or incentive salience? , 1998, Brain Research Reviews.
[133] Casimir J. H. Ludwig,et al. Stimulus-driven and goal-driven control over visual selection. , 2002, Journal of experimental psychology. Human perception and performance.
[134] John T Serences,et al. Population response profiles in early visual cortex are biased in favor of more valuable stimuli. , 2010, Journal of neurophysiology.
[135] S. Yantis,et al. On the distinction between visual salience and stimulus-driven attentional capture. , 1999, Journal of experimental psychology. Human perception and performance.
[136] H. Egeth,et al. Overriding stimulus-driven attentional capture , 1994, Perception & psychophysics.
[137] M. Chun,et al. Selective attention modulates implicit learning , 2001, The Quarterly journal of experimental psychology. A, Human experimental psychology.
[138] K. Berridge. The debate over dopamine’s role in reward: the case for incentive salience , 2007, Psychopharmacology.
[139] G. Rizzolatti,et al. Orienting of attention and eye movements , 2004, Experimental Brain Research.
[140] J. Theeuwes,et al. Visual search for featural singletons: No top-down modulation, only bottom-up priming , 2006 .
[141] N. P. Bichot,et al. A visual salience map in the primate frontal eye field. , 2005, Progress in brain research.
[142] Bart Gips,et al. Temporal coding organized by coupled alpha and gamma oscillations prioritize visual processing , 2014, Trends in Neurosciences.
[143] J. Theeuwes,et al. Reward grabs the eye: Oculomotor capture by rewarding stimuli , 2012, Vision Research.
[144] H.A. Slagter,et al. Facilitation and inhibition in attention: Functional dissociation of pre-stimulus alpha activity, P1, and N1 components , 2016, NeuroImage.
[145] N. P. Bichot,et al. Perceptual and motor processing stages identified in the activity of macaque frontal eye field neurons during visual search. , 1996, Journal of neurophysiology.
[146] J. Theeuwes. Abrupt luminance change pops out; abrupt color change does not , 1995, Perception & psychophysics.
[147] Steven Yantis,et al. Value-driven attentional and oculomotor capture during goal-directed, unconstrained viewing , 2012, Attention, Perception, & Psychophysics.
[148] H. Egeth. Comment on Theeuwes’s Characterization of Visual Selection , 2018, Journal of cognition.
[149] Ben M. Crittenden,et al. Distinct Mechanisms for Distractor Suppression and Target Facilitation , 2016, The Journal of Neuroscience.
[150] Jan Theeuwes,et al. Statistical regularities modulate attentional capture independent of search strategy , 2018, Attention, Perception, & Psychophysics.
[151] J. Theeuwes. Perceptual selectivity for color and form , 1992, Perception & psychophysics.
[152] J. Theeuwes,et al. Cueing the location of a distractor: an inhibitory mechanism of spatial attention? , 2008, Acta psychologica.
[153] M. Posner. Chronometric explorations of mind : the third Paul M. Fitts lectures, delivered at the University of Michigan, September 1976 , 1978 .
[154] E. Yeterian,et al. Cortico-striate projections in the rhesus monkey: The organization of certain cortico-caudate connections , 1978, Brain Research.
[155] The effect of reward on orienting and reorienting in exogenous cuing , 2014, Cognitive, affective & behavioral neuroscience.
[156] L. Zhaoping. Attention capture by eye of origin singletons even without awareness--a hallmark of a bottom-up saliency map in the primary visual cortex. , 2008, Journal of vision.
[157] Christof Koch,et al. A Model of Saliency-Based Visual Attention for Rapid Scene Analysis , 2009 .
[158] L. Chelazzi,et al. Visual Selective Attention and the Effects of Monetary Rewards , 2006, Psychological science.
[159] Jan Theeuwes,et al. Statistical Regularities Modulate Attentional Capture , 2018, Journal of experimental psychology. Human perception and performance.
[160] S. Yantis,et al. Preparatory activity in visual cortex indexes distractor suppression during covert spatial orienting. , 2004, Journal of neurophysiology.
[161] J Theeuwes,et al. Effects of location and form cuing on the allocation of attention in the visual field. , 1989, Acta psychologica.
[162] M. Posner,et al. Components of visual orienting , 1984 .
[163] Michel F. Failing,et al. People look at the object they fear: oculomotor capture by stimuli that signal threat , 2017, Cognition & emotion.
[164] Zhaoping Li,et al. Neural Activities in V1 Create a Bottom-Up Saliency Map , 2012, Neuron.
[165] Jan Theeuwes,et al. Reward-Priming of Location in Visual Search , 2014, PloS one.
[166] Jan Theeuwes,et al. Self-explaining roads , 1995 .
[167] O. Jensen,et al. Shaping Functional Architecture by Oscillatory Alpha Activity: Gating by Inhibition , 2010, Front. Hum. Neurosci..
[168] Sharif I. Kronemer,et al. Reward, attention, and HIV-related risk in HIV+ individuals , 2016, Neurobiology of Disease.
[169] Á. Kristjánsson,et al. Is goal-directed attentional guidance just intertrial priming? A review. , 2013, Journal of vision.
[170] Joy J. Geng,et al. Evidence for Second-Order Singleton Suppression Based on Probabilistic Expectations , 2018, Journal of experimental psychology. Human perception and performance.
[171] J. Theeuwes,et al. Evidence for a dissociation between the control of oculomotor capture and disengagement , 2010, Experimental Brain Research.
[172] B. Anderson. A value-driven mechanism of attentional selection. , 2013, Journal of vision.
[173] C. Eriksen,et al. Temporal and spatial characteristics of selective encoding from visual displays , 1972 .
[174] Bradley R. Postle,et al. Spatial working memory activity of the caudate nucleus is sensitive to frame of reference , 2003, Cognitive, affective & behavioral neuroscience.
[175] M. Chun,et al. Memory deficits for implicit contextual information in amnesic subjects with hippocampal damage , 1999, Nature Neuroscience.
[176] M. Posner,et al. Orienting of Attention* , 1980, The Quarterly journal of experimental psychology.
[177] Maria Concetta Morrone,et al. Spatiotemporal filtering and motion illusions. , 2013, Journal of vision.
[178] D. Heeger,et al. The Normalization Model of Attention , 2009, Neuron.
[179] J. Wolfe,et al. Changing your mind: on the contributions of top-down and bottom-up guidance in visual search for feature singletons. , 2003, Journal of experimental psychology. Human perception and performance.
[180] J. Theeuwes. Endogenous and Exogenous Control of Visual Selection , 1994, Perception.
[181] J. Theeuwes,et al. Abrupt onsets capture attention independent of top-down control settings II: Additivity is no evidence for filtering , 2010, Attention, perception & psychophysics.
[182] Jan Theeuwes,et al. The limits of top-down control of visual attention. , 2009, Acta psychologica.
[183] Steven B. Most,et al. Winners and Losers: Reward and Punishment Produce Biases in Temporal Selection , 2019, Journal of experimental psychology. Learning, memory, and cognition.
[184] Odmar Neumann,et al. Automatic Processing: A Review of Recent Findings and a Plea for an Old Theory , 1984 .
[185] J. Theeuwes,et al. Remembering a Location Makes the Eyes Curve Away , 2005, Psychological science.
[186] P. Rabbitt,et al. Reflexive and voluntary orienting of visual attention: time course of activation and resistance to interruption , 1989 .
[187] R. Aslin,et al. PSYCHOLOGICAL SCIENCE Research Article UNSUPERVISED STATISTICAL LEARNING OF HIGHER-ORDER SPATIAL STRUCTURES FROM VISUAL SCENES , 2022 .
[188] Jan Theeuwes,et al. More capture, more suppression: Distractor suppression due to statistical regularities is determined by the magnitude of attentional capture , 2019, Psychonomic Bulletin & Review.
[189] M. Posner,et al. Attention and the detection of signals. , 1980, Journal of experimental psychology.
[190] H J Müller,et al. Visual search for singleton feature targets within and across feature dimensions , 1995, Perception & psychophysics.
[191] Marius V Peelen,et al. Reward Selectively Modulates the Lingering Neural Representation of Recently Attended Objects in Natural Scenes , 2017, The Journal of Neuroscience.
[192] Jan Theeuwes,et al. Priming makes a stimulus more salient. , 2013, Journal of vision.
[193] New objects can capture attention without a unique luminance transient , 2007, Psychonomic bulletin & review.
[194] L. Chelazzi,et al. Learning to Attend and to Ignore Is a Matter of Gains and Losses , 2009, Psychological science.
[195] Alejandro Lleras,et al. Rewarding context accelerates implicit guidance in visual search , 2013, Attention, perception & psychophysics.
[196] Roger W Remington,et al. Modulation of spatial attention by goals, statistical learning, and monetary reward , 2015, Attention, perception & psychophysics.
[197] L. Chelazzi,et al. Getting rid of visual distractors: the why, when, how, and where. , 2019, Current opinion in psychology.
[198] Wolfram Schultz,et al. Dopamine reward prediction-error signalling: a two-component response , 2016, Nature Reviews Neuroscience.
[199] Hsuan-Fu Chao. Top-down attentional control for distractor locations: the benefit of precuing distractor locations on target localization and discrimination. , 2010, Journal of experimental psychology. Human perception and performance.
[200] Ilya E. Monosov,et al. What and Where Information in the Caudate Tail Guides Saccades to Visual Objects , 2012, The Journal of Neuroscience.
[201] R. Desimone,et al. Selective attention gates visual processing in the extrastriate cortex. , 1985, Science.
[202] E. Van der Burg,et al. The role of spatial and nonspatial information in visual selection. , 2007, Journal of experimental psychology. Human perception and performance.
[203] Nicholas B Turk-Browne,et al. Statistical learning and its consequences. , 2012, Nebraska Symposium on Motivation. Nebraska Symposium on Motivation.
[204] Anna Schubö,et al. You see what you have learned. Evidence for an interrelation of associative learning and visual selective attention. , 2015, Psychophysiology.
[205] M. Chun,et al. Implicit, long-term spatial contextual memory. , 2003, Journal of experimental psychology. Learning, memory, and cognition.
[206] Stefan Pollmann,et al. Neural structures involved in visual search guidance by reward-enhanced contextual cueing of the target location , 2016, NeuroImage.
[207] S. Kastner,et al. FEF-Controlled Alpha Delay Activity Precedes Stimulus-Induced Gamma-Band Activity in Visual Cortex , 2017, The Journal of Neuroscience.
[208] J. Theeuwes,et al. Faces capture attention: Evidence from inhibition of return , 2006 .
[209] Hyoung F. Kim,et al. Basal ganglia circuits for reward value-guided behavior. , 2014, Annual review of neuroscience.
[210] G. Campana,et al. Where perception meets memory: A review of repetition priming in visual search tasks , 2010, Attention, perception & psychophysics.
[211] Edward Awh,et al. The role of alpha oscillations in spatial attention: limited evidence for a suppression account. , 2019, Current opinion in psychology.
[212] Jatin G Vaidya,et al. Value-Driven Attentional Capture in Adolescence , 2014, Psychological science.
[213] Jan Theeuwes,et al. Exogenous visual orienting by reward. , 2014, Journal of vision.
[214] Jan Theeuwes,et al. Feature-based attention: it is all bottom-up priming , 2013, Philosophical Transactions of the Royal Society B: Biological Sciences.
[215] U. Ansorge,et al. Testing a priming account of the contingent-capture effect , 2019, Attention, Perception, & Psychophysics.
[216] Jan Theeuwes,et al. Oculomotor capture by stimuli that signal the availability of reward. , 2015, Journal of neurophysiology.
[217] J. Theeuwes,et al. Eye cannot see it: The interference of subliminal distractors on saccade metrics , 2009, Vision Research.
[218] Steven B. Most,et al. Cognitive control and counterproductive oculomotor capture by reward-related stimuli , 2015 .
[219] E. Vogel,et al. Sensory gain control (amplification) as a mechanism of selective attention: electrophysiological and neuroimaging evidence. , 1998, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[220] Vincent Di Lollo,et al. Electrophysiological Indices of Target and Distractor Processing in Visual Search , 2009, Journal of Cognitive Neuroscience.
[221] Steven Yantis,et al. Value-driven attentional priority signals in human basal ganglia and visual cortex , 2014, Brain Research.
[222] Dirk Kerzel,et al. The Allocation of Resources in Visual Working Memory and Multiple Attentional Templates , 2019, Journal of experimental psychology. Human perception and performance.
[223] James W Bisley,et al. The what, where, and why of priority maps and their interactions with visual working memory , 2015, Annals of the New York Academy of Sciences.
[224] Eelke Spaak,et al. Hippocampal and Prefrontal Theta-Band Mechanisms Underpin Implicit Spatial Context Learning , 2019, The Journal of Neuroscience.
[225] Anders Petersen,et al. Attentional Capture by Salient Distractors during Visual Search Is Determined by Temporal Task Demands , 2012, Journal of Cognitive Neuroscience.
[226] Senqing Qi,et al. Neural correlates of reward-driven attentional capture in visual search , 2013, Brain Research.
[227] Christopher J. Peck,et al. Reward Modulates Attention Independently of Action Value in Posterior Parietal Cortex , 2009, The Journal of Neuroscience.
[228] Michel F. Failing,et al. Don’t let it distract you: how information about the availability of reward affects attentional selection , 2017, Attention, perception & psychophysics.
[229] H. Müller,et al. Searching for unknown feature targets on more than one dimension: Investigating a “dimension-weighting” account , 1996, Perception & psychophysics.
[230] Jan Theeuwes,et al. Goal-driven, stimulus-driven, and history-driven selection. , 2019, Current opinion in psychology.
[231] J. Theeuwes. Cross-dimensional perceptual selectivity , 1991, Perception & psychophysics.
[232] E Tulving,et al. Priming and human memory systems. , 1990, Science.
[233] C. Frith,et al. Neural Correlates of Attentional Capture in Visual Search , 2004, Journal of Cognitive Neuroscience.
[234] K. Nakayama,et al. Priming of pop-out: I. Role of features , 1994, Memory & cognition.
[235] P. Fries. A mechanism for cognitive dynamics: neuronal communication through neuronal coherence , 2005, Trends in Cognitive Sciences.
[236] John T Serences,et al. Value-Based Modulations in Human Visual Cortex , 2008, Neuron.
[237] J T Todd,et al. Implications of a transient-sustained dichotomy for the measurement of human performance. , 1979, Journal of experimental psychology. Human perception and performance.
[238] J. Theeuwes. Top-down search strategies cannot override attentional capture , 2004, Psychonomic bulletin & review.
[239] S. Luck,et al. Electrophysiological correlates of feature analysis during visual search. , 1994, Psychophysiology.
[240] Martin Eimer,et al. Involuntary Attentional Capture is Determined by Task Set: Evidence from Event-related Brain Potentials , 2008, Journal of Cognitive Neuroscience.
[241] M. Nieuwenstein,et al. The attentional blink provides episodic distinctiveness: sparing at a cost. , 2009, Journal of experimental psychology. Human perception and performance.
[242] M. Carrasco. Visual attention: The past 25 years , 2011, Vision Research.
[243] A. Treisman. Features and Objects: The Fourteenth Bartlett Memorial Lecture , 1988, The Quarterly journal of experimental psychology. A, Human experimental psychology.
[244] N. Taatgen,et al. Too much control can hurt: A threaded cognition model of the attentional blink , 2009, Cognitive Psychology.
[245] K L Shapiro,et al. Temporary suppression of visual processing in an RSVP task: an attentional blink? . , 1992, Journal of experimental psychology. Human perception and performance.
[246] M. Botvinick,et al. Statistical learning of temporal community structure in the hippocampus , 2016, Hippocampus.
[247] John J. Foxe,et al. The Role of Alpha-Band Brain Oscillations as a Sensory Suppression Mechanism during Selective Attention , 2011, Front. Psychology.
[248] C. Koch,et al. Computational modelling of visual attention , 2001, Nature Reviews Neuroscience.
[249] Glyn W. Humphreys,et al. Visual marking inhibits singleton capture , 2003, Cognitive Psychology.
[250] I. Biederman. Perceiving Real-World Scenes , 1972, Science.
[251] Michael Zehetleitner,et al. Probability cueing of distractor locations: both intertrial facilitation and statistical learning mediate interference reduction , 2014, Front. Psychol..
[252] J. Theeuwes,et al. Distractors that signal reward attract the eyes , 2015 .
[253] S. Luck,et al. A Common Neural Mechanism for Preventing and Terminating the Allocation of Attention , 2012, The Journal of Neuroscience.