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394 peer-reviewed articles • 13,742 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Perceptual learning improves discrimination but does not reduce distortions in appearance
PLoS Computational Biology, 2025, 21, e1012980
1.95Citations (PDF)
2Eyes on the past: Gaze stability differs between temporal expectation and temporal attention
Journal of Vision, 2025, 25, 11
0.25Citations (PDF)
3Eyes on hold: motion task difficulty jointly delays microsaccade and pupil responses
Scientific Reports, 2025, 15,
2.72Citations (PDF)
4Visual adaptation stronger at the horizontal than the vertical meridian: Linking performance with V1 cortical surface area5.38Citations (PDF)
5Does human right frontal eye field (rFEF+) play a critical role in exogenous attention? A Transcranial Magnetic Stimulation (TMS) study
Journal of Vision, 2025, 25, 2612
0.22Citations (PDF)
6Training-induced recovery of motion perception after occipital stroke despite V1-V4 damage
Journal of Vision, 2025, 25, 2511
0.20Citations (PDF)
7Voluntary temporal attention enhances informational connectivity across cortical networks
Journal of Vision, 2025, 25, 2680
0.20Citations (PDF)
8Subacute training recovers motion discrimination after early visual cortex damage despite retrograde degeneration of the retinal ganglion cell complex
Journal of Vision, 2025, 25, 2586
0.20Citations (PDF)
9Global stimulus configuration modulates BOLD responses to visual motion in human V1 and MT
Journal of Vision, 2025, 25, 2606
0.20Citations (PDF)
10Visual Working Memory and the Primary Visual Cortex: Behavioral Asymmetries and Structural Correlates
Journal of Vision, 2025, 25, 1747
0.20Citations (PDF)
11Endogenous attention enhances contrast sensitivity similarly around cardinal meridians despite differential adaptation effects
Journal of Vision, 2025, 25, 1805
0.21Citations (PDF)
12How spatial attention shapes perception
Journal of Vision, 2025, 25, 1708
0.20Citations (PDF)
13Where internal noise and efficiency underlie visual field asymmetries
Journal of Vision, 2025, 25, 1976
0.20Citations (PDF)
14Temporal attention and oculomotor effects dissociate distinct types of temporal expectation
Journal of Vision, 2025, 25, 3
0.23Citations (PDF)
15Featural Representation and Internal Noise Underlie the Eccentricity Effect in Contrast Sensitivity
Journal of Neuroscience, 2024, 44, e0743232023
2.32Citations (PDF)
16Featural Representation and Internal Noise Underlie the Eccentricity Effect in Contrast Sensitivity
Journal of Neuroscience, 2024, 44, e0743232023
2.310Citations (PDF)
17Audiovisual integration in the McGurk effect is impervious to music training
Scientific Reports, 2024, 14,
2.75Citations (PDF)
18Limited Restoration of Contrast Sensitivity with Training after V1 Damage in Humans
ENeuro, 2024, 11, ENEURO.0020-24.2024
1.23Citations (PDF)
19When temporal attention interacts with expectation
Scientific Reports, 2024, 14,
2.725Citations (PDF)
20Task demand mediates the interaction of spatial and temporal attention
Scientific Reports, 2024, 14,
2.714Citations (PDF)
21Perception-action Dissociations as a Window into Consciousness1.410Citations (PDF)
22Do microsaccades vary with discriminability around the visual field?
Journal of Vision, 2024, 24, 11
0.22Citations (PDF)
23Presaccadic Attention Enhances and Reshapes the Contrast Sensitivity Function Differentially around the Visual Field
ENeuro, 2024, 11, ENEURO.0243-24.2024
1.215Citations (PDF)
24Presaccadic preview shapes postsaccadic processing more where perception is poor5.36Citations (PDF)
25Exogenous Spatial Attention Helps Overcome Spatial Specificity of Visual Learning in the Blind Field After V1 Damage0.66Citations (PDF)
26Visual adaptation is more pronounced at the horizontal than vertical meridian
Journal of Vision, 2024, 24, 415
0.20Citations (PDF)
27Covariation in the surface area of human primary visual cortex and cortical spatial frequency tuning
Journal of Vision, 2024, 24, 1203
0.20Citations (PDF)
28Isolating neural mechanisms of voluntary temporal attention
Journal of Vision, 2024, 24, 221
0.20Citations (PDF)
29Performance differences around polar angle vary systematically across experimental conditions
Journal of Vision, 2024, 24, 1063
0.20Citations (PDF)
30Internal noise and efficiency underlie performance asymmetries throughout the visual field
Journal of Vision, 2024, 24, 394
0.20Citations (PDF)
31Temporal attention and expectation interact regardless of expectation’s trial sequence
Journal of Vision, 2024, 24, 471
0.20Citations (PDF)
32Temporal attention and expectation jointly modulate microsaccades
Journal of Vision, 2024, 24, 656
0.20Citations (PDF)
33Motion discrimination around the visual field differs between adult humans and macaques
Journal of Vision, 2024, 24, 694
0.20Citations (PDF)
34Directional asymmetries for visual motion measured with fMRI
Journal of Vision, 2024, 24, 1077
0.20Citations (PDF)
35Adaptation and exogenous attention interact in the early visual cortex: A TMS study
IScience, 2024, 27, 111155
2.57Citations (PDF)
36Anticipatory and evoked visual cortical dynamics of voluntary temporal attention11.013Citations (PDF)
37How the window of visibility varies around polar angle
Journal of Vision, 2024, 24, 4
0.211Citations (PDF)
38Temporal attention amplifies stimulus information in fronto-cingulate cortex at an intermediate processing stage
PNAS Nexus, 2024, 3,
2.56Citations (PDF)
39Presaccadic attention sharpens visual acuity
Scientific Reports, 2023, 13,
2.735Citations (PDF)
40Transcranial magnetic stimulation to frontal but not occipital cortex disrupts endogenous attention5.356Citations (PDF)
41Exogenous temporal attention varies with temporal uncertainty
Journal of Vision, 2023, 23, 9
0.217Citations (PDF)
42Comparing retinotopic maps of children and adults reveals a late-stage change in how V1 samples the visual field11.056Citations (PDF)
43Asymmetries in the discrimination of motion direction around the visual field
Journal of Vision, 2023, 23, 19
0.215Citations (PDF)
44Polar angle asymmetries in visual perception and neural architecture
Trends in Neurosciences, 2023, 46, 445-458
9.1112Citations (PDF)
45Microsaccades and temporal attention at different locations of the visual field
Journal of Vision, 2023, 23, 6
0.218Citations (PDF)
46Comparing retinotopic maps of children and adults reveals a late-stage change in how V1 samples the visual field
Journal of Vision, 2023, 23, 5898
0.20Citations (PDF)
47Thinks are looking up: The extrafoveal preview effect is the largest at the upper vertical meridian, where peripheral sensitivity is worst
Journal of Vision, 2023, 23, 5404
0.20Citations (PDF)
48Endogenous temporal attention benefits performance even under temporal uncertainty
Journal of Vision, 2023, 23, 5120
0.20Citations (PDF)
49Presaccadic attention sharpens visual acuity around the visual field
Journal of Vision, 2023, 23, 4846
0.20Citations (PDF)
50Adaptation modulates the effect of covert exogenous attention in early visual cortex – A TMS study
Journal of Vision, 2023, 23, 5934
0.20Citations (PDF)
51Microsaccade rates reflect trial difficulty for perifoveal motion discrimination
Journal of Vision, 2023, 23, 5177
0.20Citations (PDF)
52Voluntary temporal attention enhances sensory representations
Journal of Vision, 2023, 23, 4732
0.20Citations (PDF)
53Featural representation underlies performance differences around the visual field
Journal of Vision, 2023, 23, 4771
0.25Citations (PDF)
54From human frontal eye fields to early visual cortex: Probing the role of feedback in presaccadic attention with Transcranial Magnetic Stimulation (TMS)
Journal of Vision, 2023, 23, 5969
0.20Citations (PDF)
55Feature Representation Covaries With Practice Effects Around The Visual Field
Journal of Vision, 2023, 23, 5446
0.21Citations (PDF)
56Spatial attention alters BOLD activity and population receptive fields in visual cortex
Journal of Vision, 2023, 23, 5166
0.20Citations (PDF)
57Dissociable roles of human frontal eye fields and early visual cortex in presaccadic attention11.028Citations (PDF)
58Visual perceptual learning modulates microsaccade rate and directionality
Scientific Reports, 2023, 13,
2.78Citations (PDF)
59Poster Session: Evidence for preserved conscious orientation discrimination in perimetrically-blind fields early after V1-damage
Journal of Vision, 2023, 23, 40
0.20Citations (PDF)
60Invited Session I: 30 years of normalization in the visual system: Testing and expanding the Reynolds & Heeger Normalization Model of Attention
Journal of Vision, 2023, 23, 4
0.20Citations (PDF)
61Asymmetries around the visual field: From retina to cortex to behavior
PLoS Computational Biology, 2022, 18, e1009771
1.968Citations (PDF)
62Exogenous attention generalizes location transfer of perceptual learning in adults with amblyopia
IScience, 2022, 25, 103839
2.519Citations (PDF)
63Presaccadic attention enhances contrast sensitivity, but not at the upper vertical meridian
IScience, 2022, 25, 103851
2.545Citations (PDF)
64Differential Effects of Endogenous and Exogenous Attention on Sensory Tuning
Journal of Neuroscience, 2022, 42, 1316-1327
2.358Citations (PDF)
65Benefits of Endogenous Spatial Attention During Visual Double-Training in Cortically-Blinded Fields2.015Citations (PDF)
66Linking individual differences in human primary visual cortex to contrast sensitivity around the visual field11.0105Citations (PDF)
67Linking cortical magnification in human primary visual cortex with contrast sensitivity
Journal of Vision, 2022, 22, 3421
0.20Citations (PDF)
68Modulation of microsaccade rate and directionality in visual perceptual learning
Journal of Vision, 2022, 22, 4080
0.21Citations (PDF)
69Polar angle asymmetries in V1 cortical magnification differ between children and adults
Journal of Vision, 2022, 22, 3589
0.20Citations (PDF)
70Attributes of preserved motion discrimination inside perimetrically-blind fields early after V1 damage
Journal of Vision, 2022, 22, 3718
0.20Citations (PDF)
71Exogenous attention effects persist into Visual Working Memory
Journal of Vision, 2022, 22, 3630
0.20Citations (PDF)
72How temporal attention affects microsaccades around the visual field
Journal of Vision, 2022, 22, 3736
0.20Citations (PDF)
73Distinguishing anticipatory visual cortical dynamics during temporal attention and expectation
Journal of Vision, 2022, 22, 3412
0.20Citations (PDF)
74Eyes up! Presaccadic attention enhances contrast sensitivity, but not at the upper vertical meridian
Journal of Vision, 2022, 22, 4200
0.20Citations (PDF)
75Transcranial magnetic stimulation to rFEF reduces endogenous attentional modulations
Journal of Vision, 2022, 22, 3766
0.20Citations (PDF)
76Does Involuntary Temporal Attention Improve Performance at Specific Moments in Time?
Journal of Vision, 2022, 22, 3369
0.20Citations (PDF)
77Do sensory tuning functions differ between the fovea and periphery?
Journal of Vision, 2022, 22, 4418
0.22Citations (PDF)
78Motion discrimination around the visual field
Journal of Vision, 2022, 22, 3433
0.20Citations (PDF)
79Different computations underlie overt presaccadic and covert spatial attention
Nature Human Behaviour, 2021, 5, 1418-1431
7.268Citations (PDF)
80Voluntary attention improves performance similarly around the visual field0.853Citations (PDF)
81A dynamic normalization model of temporal attention
Nature Human Behaviour, 2021, 5, 1674-1685
7.274Citations (PDF)
82Feature-based attention enables robust, long-lasting location transfer in human perceptual learning
Scientific Reports, 2021, 11,
2.719Citations (PDF)
83An image-computable model of how endogenous and exogenous attention differentially alter visual perception5.336Citations (PDF)
84To look or not to look: dissociating presaccadic and covert spatial attention
Trends in Neurosciences, 2021, 44, 669-686
9.170Citations (PDF)
85Transcranial magnetic stimulation entrains alpha oscillatory activity in occipital cortex
Scientific Reports, 2021, 11,
2.730Citations (PDF)
86Cross-dataset reproducibility of population receptive field (pRF) estimates and retinotopic map structure
Journal of Vision, 2021, 21, 2445
0.20Citations (PDF)
87Differential effects of endogenous and exogenous attention on sensory tuning
Journal of Vision, 2021, 21, 2431
0.21Citations (PDF)
88How exogenous and endogenous attention affect the vertical meridian asymmetry across spatial frequency and eccentricity
Journal of Vision, 2021, 21, 2385
0.20Citations (PDF)
89The dynamics of temporal attention
Journal of Vision, 2021, 21, 37
0.20Citations (PDF)
90From fixation to fixational eye movements – microsaccades in perceptual learning
Journal of Vision, 2021, 21, 2274
0.20Citations (PDF)
91Cross-dataset reproducibility of human retinotopic maps
NeuroImage, 2021, 244, 118609
3.088Citations (PDF)
92Asymmetries in visual acuity around the visual field
Journal of Vision, 2021, 21, 2
0.2154Citations (PDF)
93Visual Perception: Attending beyond the Eyes’ Reach
Current Biology, 2020, 30, R1322-R1324
2.510Citations (PDF)
94Oculomotor inhibition precedes temporally expected auditory targets11.070Citations (PDF)
95Differential impact of endogenous and exogenous attention on activity in human visual cortex
Scientific Reports, 2020, 10,
2.7102Citations (PDF)
96Stimulus-dependent contrast sensitivity asymmetries around the visual field
Journal of Vision, 2020, 20, 18
0.268Citations (PDF)
97Differential impact of exogenous and endogenous attention on the contrast sensitivity function across eccentricity
Journal of Vision, 2020, 20, 11
0.274Citations (PDF)
98Exogenous attention facilitates perceptual learning in visual acuity to untrained stimulus locations and features
Journal of Vision, 2020, 20, 18
0.251Citations (PDF)
99Modeling pupil responses to rapid sequential events
Behavior Research Methods, 2020, 52, 1991-2007
2.243Citations (PDF)
100Oculomotor freezing reflects tactile temporal expectation and aids tactile perception11.058Citations (PDF)
101Exogenous attention generalizes perceptual learning in adults with amblyopia
Journal of Vision, 2020, 20, 1530
0.20Citations (PDF)
102Asymmetries around the visual field in human visual cortex
Journal of Vision, 2020, 20, 543
0.20Citations (PDF)
103Voluntary temporal attention and MEG visual cortical responses
Journal of Vision, 2020, 20, 618
0.20Citations (PDF)
104Linking the effects of exogenous attention on contrast sensitivity and on apparent contrast
Journal of Vision, 2020, 20, 1159
0.20Citations (PDF)
105Microsaccades around the visual field
Journal of Vision, 2020, 20, 1524
0.20Citations (PDF)
106Asymmetries around the visual field from retina to cortex
Journal of Vision, 2020, 20, 270
0.21Citations (PDF)
107Spatial frequency asymmetries around the visual field
Journal of Vision, 2020, 20, 116
0.20Citations (PDF)
108Adolescents' and adults' sensitivity differs around the visual field
Journal of Vision, 2020, 20, 873
0.25Citations (PDF)
109Extinguishing attention via transcranial magnetic stimulation
Journal of Vision, 2020, 20, 1395
0.20Citations (PDF)
110Visual discriminability oscillates after a single flash
Journal of Vision, 2020, 20, 1284
0.20Citations (PDF)
111Feature-based attention induces location transfer in perceptual learning
Journal of Vision, 2020, 20, 780
0.20Citations (PDF)
112Differential effects of exogenous and endogenous covert attention on contrast sensitivity across spatial frequency and eccentricity
Journal of Vision, 2020, 20, 1223
0.20Citations (PDF)
113How exogenous spatial attention affects visual representation
Journal of Vision, 2019, 19, 4
0.211Citations (PDF)
114Crowding and Binding: Not All Feature Dimensions Behave in the Same Way
Psychological Science, 2019, 30, 1533-1546
2.225Citations (PDF)
115Analysis of Perceptual Expertise in Radiology – Current Knowledge and a New Perspective1.7143Citations (PDF)
116Modeling visual performance differences ‘around’ the visual field: A computational observer approach
PLoS Computational Biology, 2019, 15, e1007063
1.962Citations (PDF)
117Presaccadic attention improves or impairs performance by enhancing sensitivity to higher spatial frequencies2.742Citations (PDF)
118Temporal attention improves perception similarly at foveal and parafoveal locations
Journal of Vision, 2019, 19, 12
0.280Citations (PDF)
119Oculomotor inhibition reflects temporal expectations
NeuroImage, 2019, 184, 279-292
3.091Citations (PDF)
120Spatial attention alters visual appearance2.9138Citations (PDF)
121Directing Voluntary Temporal Attention Increases Fixational Stability
Journal of Neuroscience, 2019, 39, 353-363
2.382Citations (PDF)
122Feature-based attention potentiates recovery of fine direction discrimination in cortically blind patients
Neuropsychologia, 2019, 128, 315-324
1.348Citations (PDF)
123In search of exogenous feature-based attention0.89Citations (PDF)
124Does exogenous spatial attention facilitate perceptual learning transfer in acuity and hyperacuity tasks?
Journal of Vision, 2019, 19, 26d
0.21Citations (PDF)
125Distinct mechanisms limit contrast sensitivity across retinal eccentricity and polar angle
Journal of Vision, 2019, 19, 43
0.25Citations (PDF)
126The extent of the vertical meridian asymmetry in spatial frequency sensitivity
Journal of Vision, 2019, 19, 121c
0.20Citations (PDF)
127Does endogenous attention compensate for spatial performance fields?
Journal of Vision, 2019, 19, 265b
0.20Citations (PDF)
128Exogenous attention and anticipatory fixational stability
Journal of Vision, 2019, 19, 265
0.23Citations (PDF)
129How exogenous attention alters perceived contrast
Journal of Vision, 2019, 19, 100
0.21Citations (PDF)
130The effect of exogenous spatial attention on the contrast sensitivity function across eccentricity
Journal of Vision, 2019, 19, 100c
0.20Citations (PDF)
131Estimation of pupillary responses to rapid events
Journal of Vision, 2019, 19, 306a
0.20Citations (PDF)
132How exogenous spatial attention affects visual representation
Journal of Vision, 2019, 19, 100b
0.25Citations (PDF)
133Spatial exogenous attention impacts recovery in cortically blind fields
Journal of Vision, 2019, 19, 37
0.20Citations (PDF)
134Emotion and anxiety potentiate the way attention alters visual appearance2.741Citations (PDF)
135Perceptual learning while preparing saccades
Vision Research, 2018, 152, 126-138
1.012Citations (PDF)
136Specific Visual Subregions of TPJ Mediate Reorienting of Spatial Attention
Cerebral Cortex, 2018, 28, 2375-2390
1.990Citations (PDF)
137Endogenous spatial attention during perceptual learning facilitates location transfer
Journal of Vision, 2018, 18, 7
0.246Citations (PDF)
138Attention alters spatial resolution by modulating second-order processing
Journal of Vision, 2018, 18, 2
0.238Citations (PDF)
139On spatial attention and its field size on the repulsion effect
Journal of Vision, 2018, 18, 8
0.217Citations (PDF)
140Humans incorporate attention-dependent uncertainty into perceptual decisions and confidence5.3106Citations (PDF)
141Endogenous attention improves perception in amblyopic macaques
Journal of Vision, 2018, 18, 11
0.214Citations (PDF)
142How visual spatial attention alters perception
Cognitive Processing, 2018, 19, 77-88
0.5109Citations (PDF)
143Task performance in covert, but not overt, attention correlates with early laterality of visual evoked potentials
Neuropsychologia, 2018, 119, 330-339
1.32Citations (PDF)
144Voluntary temporal attention affects the rate and timing of microsaccades
Journal of Vision, 2018, 18, 1032
0.21Citations (PDF)
145Presaccadic attention reshapes the sensory representation even when it impairs performance
Journal of Vision, 2018, 18, 375
0.22Citations (PDF)
146The eyes react to emotional faces in the absence of awareness
Journal of Vision, 2018, 18, 613
0.20Citations (PDF)
147Temporal attention improves perception at foveal and parafoveal locations equally
Journal of Vision, 2018, 18, 1026
0.23Citations (PDF)
148Endogenous spatial attention facilitates transfer of learning to untrained locations
Journal of Vision, 2018, 18, 7
0.22Citations (PDF)
149Endogenous and exogenous covert attention differentially modulate second-order textures
Journal of Vision, 2018, 18, 1259
0.21Citations (PDF)
150Characterizing the gain change underlying presaccadic attention
Journal of Vision, 2018, 18, 1206
0.20Citations (PDF)
151Towards a computational observer model of perceptual performance fields
Journal of Vision, 2018, 18, 212
0.21Citations (PDF)
152Flanking Distractors are Recognized and Suppressed Before the Target is Identified
Journal of Vision, 2018, 18, 725
0.20Citations (PDF)
153Prestimulus Inhibition of Saccades in Adults With and Without Attention-Deficit/Hyperactivity Disorder as an Index of Temporal Expectations
Psychological Science, 2017, 28, 835-850
2.293Citations (PDF)
154Attention Modifies Spatial Resolution According to Task Demands
Psychological Science, 2017, 28, 285-296
2.268Citations (PDF)
155Selective attention within the foveola
Nature Neuroscience, 2017, 20, 1413-1417
11.493Citations (PDF)
156Attention model of binocular rivalry5.386Citations (PDF)
157Feature singletons attract spatial attention independently of feature priming
Journal of Vision, 2017, 17, 7
0.217Citations (PDF)
158Distinct perceptual rhythms for feature and conjunction searches
Journal of Vision, 2017, 17, 22
0.233Citations (PDF)
159Crowding and binding: Not all feature-dimensions behave equally
Journal of Vision, 2017, 17, 374
0.23Citations (PDF)
160Attentional cues potentiate full recovery of fine motion discrimination in cortical blindness
Journal of Vision, 2017, 17, 57
0.21Citations (PDF)
161Attentional cues potentiate recovery of fine direction discrimination in cortically-blind patients
Journal of Vision, 2017, 17, 207
0.22Citations (PDF)
162Accounting for attention in perceptual decisions and confidence
Journal of Vision, 2017, 17, 386
0.20Citations (PDF)
163Task performance in covert, but not overt, attention correlates with early ERP laterality
Journal of Vision, 2017, 17, 387
0.20Citations (PDF)
164An attention model of binocular rivalry
Journal of Vision, 2017, 17, 579
0.22Citations (PDF)
165Endogenous and exogenous covert attention are functionally intact in adults with ADHD
Journal of Vision, 2017, 17, 699
0.25Citations (PDF)
166The spatial distribution of exogenous feature based attention
Journal of Vision, 2017, 17, 666
0.20Citations (PDF)
167Covert spatial attention is functionally intact in amblyopic human adults
Journal of Vision, 2016, 16, 30
0.251Citations (PDF)
168Rapid and long-lasting learning of feature binding
Cognition, 2016, 154, 130-138
1.612Citations (PDF)
169Feature priming facilitates target selection but does not modulate exogenous attentional shift
Journal of Vision, 2016, 16, 1285
0.22Citations (PDF)
170Pre-stimulus inhibition of microsaccades in adults with and without ADHD as an index for temporal expectations
Journal of Vision, 2016, 16, 598
0.22Citations (PDF)
171Dynamics of voluntary and involuntary temporal attention
Journal of Vision, 2016, 16, 588
0.20Citations (PDF)
172Saccade preparation reshapes perceptual tuning
Journal of Vision, 2016, 16, 1042
0.22Citations (PDF)
173Attentional deployment during feature and conjunction searches
Journal of Vision, 2016, 16, 749
0.20Citations (PDF)
174Perceptual training alters residual motion processing in V1-damaged humans
Journal of Vision, 2016, 16, 1181
0.20Citations (PDF)
175Covert attention within the foveola enhances fine discrimination
Journal of Vision, 2016, 16, 1264
0.20Citations (PDF)
176Visual recovery in cortical blindness is limited by high internal noise
Journal of Vision, 2015, 15, 9
0.248Citations (PDF)
177Exogenous attention facilitates location transfer of perceptual learning
Journal of Vision, 2015, 15, 11
0.247Citations (PDF)
178Rapid and long-lasting reduction of crowding through training
Journal of Vision, 2015, 15, 15
0.225Citations (PDF)
179Stimulus competition mediates the joint effects of spatial and feature-based attention
Journal of Vision, 2015, 15, 7
0.240Citations (PDF)
180Deconstructing Interocular Suppression: Attention and Divisive Normalization
PLoS Computational Biology, 2015, 11, e1004510
1.924Citations (PDF)
181Exogenous Attention Enables Perceptual Learning
Psychological Science, 2015, 26, 1854-1862
2.255Citations (PDF)
182Attentional trade-offs maintain the tracking of moving objects across saccades
Journal of Neurophysiology, 2015, 113, 2220-2231
1.442Citations (PDF)
183Acting without seeing: eye movements reveal visual processing without awareness
Trends in Neurosciences, 2015, 38, 247-258
9.1140Citations (PDF)
184Rapid reduction of crowding by training
Journal of Vision, 2015, 15, 102
0.22Citations (PDF)
185Amblyopic adults demonstrate intact endogenous spatial attention
Journal of Vision, 2015, 15, 1339
0.22Citations (PDF)
186Training reveals a coupling between overestimation and improved discrimination
Journal of Vision, 2015, 15, 1299
0.20Citations (PDF)
187Selective attention within the foveola
Journal of Vision, 2015, 15, 177
0.20Citations (PDF)
188Attention modulation and divisive normalization in interocular suppression
Journal of Vision, 2015, 15, 381
0.20Citations (PDF)
189Microsaccade rate is not suppressed in adults with amblyopia.
Journal of Vision, 2015, 15, 1274
0.20Citations (PDF)
190Voluntary attention is selective in time: perceptual tradeoffs
Journal of Vision, 2015, 15, 564
0.20Citations (PDF)
191Attention enhances contrast appearance via increased input baseline of neural responses
Journal of Vision, 2014, 14, 16-16
0.238Citations (PDF)
192Color vision in ADHD: Part 2 - Does Attention influence Color Perception?1.414Citations (PDF)
193The attentional effects of single cues and color singletons on visual sensitivity.0.727Citations (PDF)
194How Attention Affects Spatial Resolution1.690Citations (PDF)
195Colour vision in ADHD: Part 1 - Testing the retinal dopaminergic hypothesis1.421Citations (PDF)
196Learning one task by interleaving practice with another task
Vision Research, 2014, 101, 118-124
1.035Citations (PDF)
197Perceptual learning modifies untrained pursuit eye movements
Journal of Vision, 2014, 14, 8-8
0.224Citations (PDF)
198Spatial and feature-based attention differentially affect the gain and tuning of orientation-selective filters
Journal of Vision, 2014, 14, 703-703
0.26Citations (PDF)
199High-contrast distractors disrupt contrast, but not orientation discrimination
Journal of Vision, 2014, 14, 1043-1043
0.20Citations (PDF)
200Differential effects of covert and overt orienting on microsaccade rate
Journal of Vision, 2014, 14, 641-641
0.20Citations (PDF)
201The mechanisms underlying the fast and early improvement in PL
Journal of Vision, 2014, 14, 949-949
0.20Citations (PDF)
202Residual inefficiencies of recovered vision in cortically blind fields - insights from equivalent noise analysis
Journal of Vision, 2014, 14, 659-659
0.20Citations (PDF)
203Spatial attention generalizes perceptual learning to untrained locations in an acuity task
Journal of Vision, 2014, 14, 1166-1166
0.20Citations (PDF)
204Stimulus competition modulates the joint effects of spatial and feature-based attention on visual sensitivity
Journal of Vision, 2014, 14, 20-20
0.20Citations (PDF)
205Exogenous attention enables visual perceptual learning and task transfer
Journal of Vision, 2014, 14, 1165-1165
0.20Citations (PDF)
206Exogenous attention facilitates perceptual learning transfer within and across visual hemifields
Journal of Vision, 2014, 14, 1164-1164
0.20Citations (PDF)
207Intact functioning of exogenous spatial attention in amblyopic adults
Journal of Vision, 2014, 14, 539-539
0.20Citations (PDF)
208Adaptive deployment of spatial and feature-based attention before saccades
Vision Research, 2013, 85, 26-35
1.070Citations (PDF)
209Attentional enhancement of spatial resolution: linking behavioural and neurophysiological evidence
Nature Reviews Neuroscience, 2013, 14, 188-200
14.6356Citations (PDF)
210Reach preparation enhances visual performance and appearance2.645Citations (PDF)
211Exogenous spatial attention: Evidence for intact functioning in adults with autism spectrum disorder
Journal of Vision, 2013, 13, 9-9
0.254Citations (PDF)
212Independent Effects of Adaptation and Attention on Perceived Speed
Psychological Science, 2013, 24, 150-159
2.248Citations (PDF)
213Endogenous Spatial Attention: Evidence for Intact Functioning in Adults With Autism
Autism Research, 2013, 6, 108-118
1.953Citations (PDF)
214The effects of task difficulty on visual search strategy in virtual 3D displays
Journal of Vision, 2013, 13, 24-24
0.244Citations (PDF)
215Attention improves visual performance in amblyopic macaque monkeys
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216Does exogenous attention modulate endogenous attention?
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217When diverting attention improves performance: Attention trades off spatial resolution
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218Remapping of attentionally tracked locations
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219Alternating training between tasks enables visual perceptual learning
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220A normalization model of attention predicts enhanced contrast appearance
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221The attentional effects of single cues and color singletons on visual sensitivity
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222Rapid Simultaneous Enhancement of Visual Sensitivity and Perceived Contrast during Saccade Preparation
Journal of Neuroscience, 2012, 32, 13744-13752a
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223Similar Effects of Feature-Based Attention on Motion Perception and Pursuit Eye Movements at Different Levels of Awareness
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224Feature-based attention enhances performance by increasing response gain
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225Isoeccentric locations are not equivalent: The extent of the vertical meridian asymmetry
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226Pre-cortical noise shapes visual performance fields
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227Single cues enhance contrast sensitivity, but feature singletons do not
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228Endogenous attention optimizes performance by adjusting spatial resolution: evidence from selective adaptation
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229Perceptual learning of motion directions transfers to smooth pursuit eye movements
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230Attention enhances perceptual learning and transfers it to untrained locations
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231Changes in visual performance and appearance before manual reach movements
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232Attentional Enhancement via Selection and Pooling of Early Sensory Responses in Human Visual Cortex
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233Feature-based attention involuntarily and simultaneously improves visual performance across locations
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234Visual Performance Fields: Frames of Reference
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235Exogenous attention enhances 2nd-order contrast sensitivity
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236Visual attention: The past 25 years
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237Tracking Without Perceiving
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238Equality judgments cannot distinguish between attention effects on appearance and criterion: A reply to Schneider (2011)
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239The extent of the vertical meridian asymmetry
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240Differential effects of endogenous and exogenous attention on second-order contrast sensitivity
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241Feature-based attention enhances performance by increasing response gain
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242Independent effects of adaptation and attention on speed perception
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243Fast unconscious fear conditioning
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244Occipital TMS facilitates and hinders visual perception via a contrast gain mechanism
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245Saccades gradually increase the perceived contrast of their targets
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246The simultaneous and involuntary effect of global feature-based attention on motion sensitivity
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247Voluntary attention increases perceived spatial frequency0.868Citations (PDF)
248When size matters: attention affects performance by contrast or response gain
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249Evaluating comparative and equality judgments in contrast perception: Attention alters appearance
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250The effects of attention in texture segmentation in the lower and upper visual fields
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251Visual performance fields in noise
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252Interaction effects of emotion and attention on contrast sensitivity correlate with measures of anxiety
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253Attention does alter apparent contrast: Evaluating comparative and equality judgments
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254Attentional facilitation of perceptual learning without awareness
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255Attention enhances spatial resolution by shifting sensitivity to high spatial frequencies
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256Perceptual consequences of temporal disparities in the visual field: The case of the line motion illusion
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257Contrast sensitivity is enhanced at cued and impaired at uncued locations
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258Contrast gain vs. response gain: Do sustained and transient covert attention exhibit different signature responses?
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259Attention alters the appearance of motion coherence
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260Exogenous attention: Less effort, more learning!
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261Bright and dark attention: Distinct effect of divided attention at attended and unattended locations
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262Endogenous attention alters the appearance of spatial frequency
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263Covert attention generalizes perceptual learning
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264Cue salience modulates the effects of exogenous attention on apparent contrast
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265Information accrual for unattended shapes in negative priming
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266The influence of attention on motion selective channels: An equivalent noise approach
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267Spatial attention reduces contrast adaptation
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268Transient attention potentiates perceptual learning
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269Spatial resolution underlies the set size effect in conjunction search
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270Does visual short term memory vary as a function of visual field location
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271On the flexibility of covert attention and its effects on a texture segmentation task
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272The effects of task demands on the dynamics of visual search in virtual 3D displays
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273Sustained and transient covert attention: A test for signal enhancement
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274Comparing the effectiveness of spatial and feature-based attention
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275Covert transient attention does not change the characteristics of a spatial frequency channel
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276On the interaction between covert attention and contrast adaptation
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277Characterizing visual performance fields in children
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278When sustained attention impairs contrast sensitivity
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279Temporal dynamics of negative priming
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280Developmental course of performance fields with familiar stimuli
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281Transient attention reduces the effect of adaptation
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282The effects of stimulus-driven attention on subjective organization
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283Feature-based attention increases gain and sharpens tuning of motion selective channels
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284Psychophysical evidence for the normalization model of attention
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285Covert attention alters visual appearance
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286Endogenous, sustained attention alters contrast appearance
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287Covert attention speeds information accrual more along the vertical than the horizontal meridian
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288Attention enhances visual contributions to multisensory integration for the perception of upright.
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289Effects of faces as exogenous cues are dependent on visual field and handedness
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290Can covert attention eliminate temporal disparities in the visual field?
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291Effects of transient covert attention on the psychometric function
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292Can transient attention offset the effects of sustained attention?
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293Perceived spatial frequency varies as a function of location in the visual field
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294Negative priming for unfamiliar shapes occurs under covert attention
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295Perceptual consequences of visual performance fields: The case of the line motion illusion
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296Title is missing!
Journal of Vision, 2010, 7, 49-49
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297Feature-based attention modulates orientation-selective responses in human visual cortex
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298Differential effects of endogenous and exogenous covert attention on texture segmentation
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299Effects of selective adaptation on texture segmentation and its interaction with covert attention.
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300Transient covert attention increases the perceived rate of flicker
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301Apparent contrast differs across the vertical meridian of the visual field: Visual and attentional factors
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302Temporal dynamics of covert attention
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303Visual performance fields are retinotopic
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304Attention and contrast: A model linking single-unit and psychophysical data
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305Masked or not, covert attention enhances spatial resolution: Support for signal enhancement
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306Differential effects of suppressed visual motion information on perception and action during binocular rivalry flash suppression
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307Trading off visual acuity? Transient attention increases acuity at cued locations and decreases it at uncued locations
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308Feature-based attention enhances motion processing during dominance and suppression in binocular rivalry
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309Measuring the spatial spread of feature-based attention to orientation
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310A neural pooling rule for attentional selection in human visual cortex
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311Covert attention affects second-order contrast sensitivity
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312The limit of spatial resolution varies at isoeccentric locations in the visual field
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313On the automaticity and flexibility of covert attention: A speed-accuracy trade-off analysis
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314Voluntary Attention Enhances Contrast Appearance
Psychological Science, 2009, 20, 354-362
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315Perceptual consequences of visual performance fields: The case of the line motion illusion
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316Covert attention effects on spatial resolution3.063Citations (PDF)
317How spatial and feature-based attention affect the gain and tuning of population responses
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318A population-coding model of attention’s influence on contrast response: Estimating neural effects from psychophysical data
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319Attention trades off spatial acuity
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320Cue contrast modulates the effects of exogenous attention on appearance
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321Perceptual asymmetries are preserved in short-term memory tasks0.876Citations (PDF)
322The effects of transient attention on spatial resolution and the size of the attentional cue
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323Transient attention does increase perceived contrast of suprathreshold stimuli: A reply to Prinzmetal, Long, and Leonhardt (2008)
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324On the flexibility of sustained attention and its effects on a texture segmentation task
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325Bias and sensitivity in two-interval forced choice procedures: Tests of the difference model
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326Apparent contrast differs across the vertical meridian: Visual and attentional factors
Journal of Vision, 2008, 8, 16
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327Feature-Based Attention Modulates Orientation-Selective Responses in Human Visual Cortex
Neuron, 2007, 55, 313-323
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328How do attention and adaptation affect contrast sensitivity?
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329Comparing the time course and efficacy of spatial and feature-based attention
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330Transient covert attention does alter appearance: A reply to Schneider (2006)
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331Transient covert attention and the perceived rate of flicker
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332Neural correlates of the visual vertical meridian asymmetry
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333When sustained attention impairs perception
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334How attention enhances spatial resolution: Evidence from selective adaptation to spatial frequency
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335Sustained and transient covert attention enhance the signal via different contrast response functions
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336Attention speeds processing across eccentricity: Feature and conjunction searches
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337Exogenous attention and color perception: Performance and appearance of saturation and hue
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338Covert attention increases contrast sensitivity: psychophysical, neurophysiological and neuroimaging studies3.0143Citations (PDF)
339Emotion Facilitates Perception and Potentiates the Perceptual Benefits of Attention
Psychological Science, 2006, 17, 292-299
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340Inhibition of saccade and vergence eye movements in 3D space
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341Attention Alters the Appearance of Spatial Frequency and Gap Size
Psychological Science, 2005, 16, 644-651
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342Attention enhances contrast sensitivity at cued and impairs it at uncued locations
Vision Research, 2005, 45, 1867-1875
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343Transient Attention Enhances Perceptual Performance and fMRI Response in Human Visual Cortex
Neuron, 2005, 45, 469-477
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344Hue-contrast is invariant with attention
Journal of Vision, 2005, 5, 1001-1001
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345Covert attention enhances letter identification without affecting channel tuning
Journal of Vision, 2004, 4, 3-3
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346Temporal performance fields: visual and attentional factors
Vision Research, 2004, 44, 1351-1365
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347Attention alters appearance
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348Attention increases perceived saturation
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349On the automaticity and flexibility of covert attention
Journal of Vision, 2004, 4, 627-627
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350Attention alters appearance in early vision: Contrast sensitivity, spatial resolution, and color saturation
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351Transient attention alters the appearance of spatial frequency.
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352Emotion potentiates attentional effects in early vision
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353Visual Performance Fields and Motor Responses
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354Perceptual consequences of temporal performance fields II: Temporal order judgment
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355Sustained attention enhances letter identification without affecting channel tuning
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356Speed of visual processing increases with eccentricity
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357Covert attention increases spatial resolution with or without masks: Support for signal enhancement
Journal of Vision, 2002, 2, 4
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358Covert attention affects the psychometric function of contrast sensitivity
Vision Research, 2002, 42, 949-967
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359Covert attention accelerates the rate of visual information processing5.3330Citations (PDF)
360The locus of attentional effects in texture segmentation
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361Spatial covert attention increases contrast sensitivity across the CSF: support for signal enhancement
Vision Research, 2000, 40, 1203-1215
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362Spatial attention improves performance in spatial resolution tasks1Parts of this study were presented at the Annual Meeting of the Association for Research in Vision and Ophthalmology (May 1997) and at the Annual Meeting of the Psychonomics Society (November 1997) and published in Abstract format (Yeshurun and Carrasco, 1997and Carrasco and Yeshurun, 1997, respectively).1
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363The temporal dynamics of visual search: Evidence for parallel processing in feature and conjunction searches.0.7149Citations (PDF)
364The temporal dynamics of visual search: Evidence for parallel processing in feature and conjunction searches.0.7113Citations (PDF)
365The role of attention and study time in explicit and implicit memory for unfamiliar visual stimuli
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366“Transient structures”: The effects of practice and distractor grouping on within-dimension conjunction searches
Perception & Psychophysics, 1998, 60, 1243-1258
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367Attention improves or impairs visual performance by enhancing spatial resolution
Nature, 1998, 396, 72-75
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368Feature asymmetries in visual search: Effects of display duration, target eccentricity, orientation and spatial frequency
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369The contribution of covert attention to the set-size and eccentricity effects in visual search.0.781Citations (PDF)
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371Cortical Magnification Neutralizes the Eccentricity Effect in Visual Search
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372The interaction of objective and subjective organizations in a localization search task
Perception & Psychophysics, 1995, 57, 1134-1150
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374Multidimensional Scaling and Experimental Aesthetics: Escher's Prints as a Case Study1.01Citations (PDF)
375Semantic Component of a Cross-Modal Stroop-like Task0.111Citations (PDF)
376An Unreported Size Illusion
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377Olfactory perception and olfactory imagery: A multidimensional analysis.0.744Citations (PDF)
378Visual space-time interactions: Effects of adapting to spatial frequencies on temporal sensitivity
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379Visual letter-matching and the time course of visual and acoustic codes
Acta Psychologica, 1988, 69, 1-17
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380A Test of the Spatial-Frequency Explanation of the Müller-Lyer Illusion
Perception, 1986, 15, 553-562
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381Cortical magnification in human visual cortex parallels task performance around the visual field
ELife, 0, 10,
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382Emotional faces guide the eyes in the absence of awareness
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383Cortical magnification eliminates differences in contrast sensitivity across but not around the visual field
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384Presaccadic attention depends on eye movement direction and is related to V1 cortical magnification
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385Asymmetries in Foveal Vision
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386Transient increases to apparent contrast by exogenous attention persist in visual working memory0.20Citations (PDF)
387Visual field asymmetries develop throughout adolescence
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388Spatial attention selectively alters visual cortical representation during target anticipation11.010Citations (PDF)
389Unpacking the V1 map: Differential covariation of preferred spatial frequency and cortical magnification across spatial dimensions1.95Citations (PDF)
390Saccade direction modulates the temporal dynamics of presaccadic attention0.21Citations (PDF)
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392Spanish adaptation and analysis of psychometric properties of the work and meaning inventory0.60Citations (PDF)
393Distinct system-level computations underlie perceptual variation across the visual field5.32Citations (PDF)
394Visual field inhomogeneities and the architectonics of early visual cortex shape visual working memory1.90Citations (PDF)