[1] | Peelen MV, Fei-Fei L, Kastner S (2009) Neural mechanisms of rapid natural scene categorization in human visual cortex. Nature 460: 94–97. doi: 10.1038/nature08103
|
[2] | Van Boxtel JJA, Tsuchiya N, Koch C (2010) Consciousness and Attention: On Sufficiency and Necessity. Frontiers in Psychology 1: 1–13. doi: 10.3389/fpsyg.2010.00217
|
[3] | Rock I, Linnett CM, Grant P, Mack A (1992) Perception without attention—results of a new method. Cogn Psychol 502–534. doi: 10.1016/0010-0285(92)90017-v
|
[4] | Simons DJ, Chabris CF (1999) Gorillas in our midst: sustained inattentional blindness for dynamic events. Perception 28: 1059–1074. doi: 10.1068/p2952
|
[5] | Pitts MA, Martínez A, Hillyard SA (2012) Visual Processing of Contour Patterns under Conditions of Inattentional Blindness. Journal of cognitive neuroscience 24: 287–303. doi: 10.1162/jocn_a_00111
|
[6] | Scholte HS, Witteveen SC, Spekreijse H, Lamme VAF (2006) The influence of inattention on the neural correlates of scene segmentation. Brain research 1076: 106–115. doi: 10.1016/j.brainres.2005.10.051
|
[7] | Vandenbroucke ARE, Sligte IG, Lamme VAF (2011) Manipulations of attention dissociate fragile visual short-term memory from visual working memory. Neuropsychologia 49: 1559–1568. doi: 10.1016/j.neuropsychologia.2010.12.044
|
[8] | Sligte IG, Vandenbroucke ARE, Scholte HS, Lamme VAF (2010) Detailed sensory memory, sloppy working memory. Frontiers in Psychology 1: 1–10. doi: 10.3389/fpsyg.2010.00175
|
[9] | Vandenbroucke ARE, Sligte IG, Fahrenfort JJ, Ambroziak KB, Lamme VAF (2012) Non-attended representations are perceptual rather than unconscious in nature. PLoS ONE 7: e50042. doi: 10.1371/journal.pone.0050042
|
[10] | Moore CM, Egeth H (1997) Perception without attention: evidence of grouping under conditions of inattention. Journal of Experimental Psychology: Human Perception and Performance 33: 339–352. doi: 10.1037/0096-1523.23.2.339
|
[11] | Lamme VAF (2003) Why visual attention and awareness are different. Trends in cognitive sciences 7: 12–18. doi: 10.1016/s1364-6613(02)00013-x
|
[12] | Lamme VAF (2006) Towards a true neural stance on consciousness. Trends in cognitive sciences 10: 494–501. doi: 10.1016/j.tics.2006.09.001
|
[13] | Lamme VAF (2010) How neuroscience will change our view on consciousness. Cognitive Neuroscience 1: 204–220. doi: 10.1080/17588921003731586
|
[14] | Block N (2007) Consciousness, accessibility, and the mesh between psychology and neuroscience. The Behavioral and brain sciences 30: 481–99. doi: 10.1017/s0140525x07002786
|
[15] | Kovács G, Vogels R, Orban GA (1995) Cortical correlate of pattern backward masking. Proceedings of the National Academy of Sciences of the United States of America 92: 5587–5591. doi: 10.1073/pnas.92.12.5587
|
[16] | Fahrenfort JJ, Scholte HS, Lamme VAF (2007) Masking disrupts reentrant processing in human visual cortex. Journal of cognitive neuroscience 19: 1488–1497. doi: 10.1162/jocn.2007.19.9.1488
|
[17] | Tata MS (2002) Attend to it now or lose it forever: selective attention, metacontrast masking, and object substitution. Perception & psychophysics 64: 1028–1038. doi: 10.3758/bf03194754
|
[18] | Tata MS, Giaschi DE (2004) Warning: attending to a mask may be hazardous to your perception. Psychonomic bulletin & review 11: 262–268. doi: 10.3758/bf03196568
|
[19] | Supèr H, Spekreijse H, Lamme VAF (2001) Two distinct modes of sensory processing observed in monkey primary visual cortex (V1). Nature neuroscience 4: 304–310.
|
[20] | Marcel J (1983) Conscious and Unconscious Perception: Experiments on Visual Masking and Word Recognition. Cognitive psychology 15: 197–237. doi: 10.1016/0010-0285(83)90009-9
|
[21] | Dehaene S, Naccache L, Le Clec'H G, Koechlin E, Mueller M, et al. (1998) Imaging unconscious semantic priming. Nature 395: 597–600. doi: 10.1038/26967
|
[22] | Van den Bussche E, Van den Noortgate W, Reynvoet B (2009) Mechanisms of masked priming: a meta-analysis. Psychological bulletin 135: 452–477. doi: 10.1037/a0015329
|
[23] | Koch C, Tsuchiya N (2007) Attention and consciousness: two distinct brain processes. Trends in cognitive sciences 11: 16–22. doi: 10.1016/j.tics.2006.10.012
|
[24] | Wyart V, Tallon-Baudry C (2008) Neural dissociation between visual awareness and spatial attention. The Journal of neuroscience 28: 2667–2679. doi: 10.1523/jneurosci.4748-07.2008
|
[25] | Van Boxtel JJA, Tsuchiya N, Koch C (2010) Opposing effects of attention and consciousness on afterimages. Proceedings of the National Academy of Sciences of the United States of America 107: 8883–8888. doi: 10.1073/pnas.0913292107
|
[26] | Watanabe M, Cheng K, Murayama Y, Ueno K, Asamizuya T, et al. (2011) Attention But Not Awareness Modulates the BOLD Signal in the Human V1 During Binocular Suppression. Science 334: 829–831. doi: 10.1126/science.1203161
|
[27] | Tallon-Baudry C (2012) On the neural mechanisms subserving consciousness and attention. Frontiers in psychology 2: 397. doi: 10.3389/fpsyg.2011.00397
|
[28] | Gilbert CD (1996) Plasticity in visual perception and physiology. Current opinion in neurobiology 6: 269–274. doi: 10.1016/s0959-4388(96)80083-3
|
[29] | Pourtois G, Rauss KS, Vuilleumier P, Schwartz S (2008) Effects of perceptual learning on primary visual cortex activity in humans. Vision research 48: 55–62. doi: 10.1016/j.visres.2007.10.027
|
[30] | Censor N, Karni A, Sagi D (2006) A link between perceptual learning, adaptation and sleep. Vision research 46: 4071–4074. doi: 10.1016/j.visres.2006.07.022
|
[31] | Casco C, Campana G, Grieco A, Fuggetta G (2004) Perceptual learning modulates electrophysiological and psychophysical response to visual texture segmentation in humans. Neuroscience letters 371: 18–23. doi: 10.1016/j.neulet.2004.08.005
|
[32] | Sagi D, Tanne D (1994) Perceptual learning: learning to see. Current opinion in neurobiology 4: 195–199. doi: 10.1016/0959-4388(94)90072-8
|
[33] | Karni A, Sagi D (1991) Where practice makes perfect in texture discrimination: evidence for primary visual cortex plasticity. Proceedings of the National Academy of Sciences of the United States of America 88: 4966–4970. doi: 10.1073/pnas.88.11.4966
|
[34] | Seitz AR, Watanabe T (2009) The phenomenon of task-irrelevant perceptual learning. Vision research 49: 2604–2610. doi: 10.1016/j.visres.2009.08.003
|
[35] | Watanabe T, Ná?ez JE, Sasaki Y (2001) Perceptual learning without perception. Nature 413: 844–848. doi: 10.1038/35101601
|
[36] | Meuwese JDI, Post RAG, Scholte HS, Lamme VAF (2013) Does perceptual learning require consciousness or attention? Journal of Cognitive Neuroscience 25: 1579–1596. doi: 10.1162/jocn_a_00424
|
[37] | Leclercq V, Seitz AR (2012) Fast-TIPL Occurs for Salient Images without a Memorization Requirement in Men but Not in Women. PloS one 7: e36228. doi: 10.1371/journal.pone.0036228
|
[38] | Zipser K, Lamme VAF, Schiller PH (1996) Contextual modulation in primary visual cortex. The Journal of neuroscience 16: 7376–7389.
|
[39] | Lamme VAF, Van Dijk BW, Spekreijse H (1992) Texture segregation is processed by primary visual cortex in man and monkey. Evidence from VEP experiments. Vision research 32: 797–807. doi: 10.1016/0042-6989(92)90022-b
|
[40] | Caputo G, Casco C (1999) A visual evoked potential correlate of global figure-ground segmentation. Vision research 39: 1597–1610. doi: 10.1016/s0042-6989(98)00270-3
|
[41] | Dickinson CA, Intraub H (2009) Spatial Asymmetries in Viewing and Remembering Scenes: Consequences of an Attentional Bias? Attention, perception & psychophysics 71: 1251–1262. doi: 10.3758/app.71.6.1251
|
[42] | Nicholls ME, Bradshaw JL, Mattingley JB (1999) Free-viewing perceptual asymmetries for the judgement of brightness, numerosity and size. Neuropsychologia 37: 307–314. doi: 10.1016/s0028-3932(98)00074-8
|
[43] | Goebel R, Esposito F, Formanisano E (2006) Analysis of functional image analysis contest (FIAC) data with brainvoyager QX: From single-subject to cortically aligned group general linear model analysis and self-organizing group independent component analysis. Human brain mapping 27: 392–401. doi: 10.1002/hbm.20249
|
[44] | Talairach P, Tournoux J (1988) A Stereotactic Coplanar Atlas of the Human Brain. Stuttgart: Thieme.
|
[45] | Gibson EJ (1969) Principles of perceptual learning and development. New York: Appleton Century Crofts.
|
[46] | Grill-Spector K, Henson R, Martin A (2006) Repetition and the brain: neural models of stimulus-specific effects. Trends in cognitive sciences 10: 14–23. doi: 10.1016/j.tics.2005.11.006
|
[47] | Henson RN (2003) Neuroimaging studies of priming. Progress in Neurobiology 70: 53–81. doi: 10.1016/s0301-0082(03)00086-8
|
[48] | Herzog MH, Fahle M (1997) The role of feedback in learning a vernier discrimination task. Vision research 37: 2133–2141. doi: 10.1016/s0042-6989(97)00043-6
|
[49] | Seitz AR, Nanez JE, Holloway S, Tsushima Y, Watanabe T (2006) Two cases requiring external reinforcement in perceptual learning. Journal of vision 6: 966–973. doi: 10.1167/6.9.9
|
[50] | Dobres J, Watanabe T (2012) Response feedback triggers long-term consolidation of perceptual learning independently of performance gains. Journal of Vision 12: 1–10. doi: 10.1167/12.8.9
|
[51] | Walker MP, Brakefield T, Hobson JA (2003) Dissociable stages of human memory consolidation and reconsolidation. Nature 425: 616–620. doi: 10.1038/nature01930
|
[52] | Schiller D, Monfils M-H, Raio CM, Johnson DC, Ledoux JE, et al. (2010) Preventing the return of fear in humans using reconsolidation update mechanisms. Nature 463: 49–53. doi: 10.1038/nature08637
|
[53] | Schoups AA, Vogels R, Orban GA (1995) Human perceptual learning in identifying the oblique orientation: retinotopy, orientation specificity and monocularity. The Journal of physiology 483: 797–810.
|
[54] | Sigman M, Gilbert CD (2000) Learning to find a shape. Nature neuroscience 3: 264–269. doi: 10.1038/72979
|
[55] | Jehee JFM, Ling S, Swisher JD, van Bergen RS, Tong F (2012) Perceptual learning selectively refines orientation representations in early visual cortex. The Journal of neuroscience 32: 16747–53a. doi: 10.1523/jneurosci.6112-11.2012
|
[56] | Seitz AR, Kim D, Watanabe T (2009) Rewards evoke learning of unconsciously processed visual stimuli in adult humans. Neuron 61: 700–707. doi: 10.1016/j.neuron.2009.01.016
|
[57] | Choi H, Watanabe T (2009) Selectiveness of the exposure-based perceptual learning: what to learn and what not to learn. Learn Percept 1: 89–98. doi: 10.1556/lp.1.2009.1.7
|
[58] | Tsushima Y, Seitz AR, Watanabe T (2008) Task-irrelevant learning occurs only when the irrelevant feature is weak. Current biology 18: R516–7. doi: 10.1016/j.cub.2008.04.029
|
[59] | Choi H, Seitz AR, Watanabe T (2009) When attention interrupts learning: inhibitory effects of attention on TIPL. Vision research 49: 2586–2590. doi: 10.1016/j.visres.2009.07.004
|
[60] | Seitz AR, Watanabe T (2005) A unified model for perceptual learning. Trends in cognitive sciences 9: 329–334. doi: 10.1016/j.tics.2005.05.010
|
[61] | Seitz AR, Watanabe T (2003) Is subliminal learning really passive? Nature 422: 36. doi: 10.1038/422036a
|
[62] | Seitz AR, Watanabe T (2008) Is task-irrelevant learning really task-irrelevant? PloS one 3: e3792. doi: 10.1371/journal.pone.0003792
|
[63] | Segaert K, Weber K, De Lange FP, Petersson KM, Hagoort P (2013) The suppression of repetition enhancement: A review of fMRI studies. Neuropsychologia 51: 59–66. doi: 10.1016/j.neuropsychologia.2012.11.006
|
[64] | Leclercq V, Seitz AR (2012) The impact of orienting attention in fast task-irrelevant perceptual learning. Attention, perception & psychophysics 74: 648–660. doi: 10.3758/s13414-012-0270-7
|
[65] | Roelfsema PR, van Ooyen A, Watanabe T (2010) Perceptual learning rules based on reinforcers and attention. Trends in cognitive sciences 14: 64–71. doi: 10.1016/j.tics.2009.11.005
|
[66] | Tsushima Y, Watanabe T (2009) Roles of attention in perceptual learning from perspectives of psychophysics and animal learning. Learning & behavior 37: 126–132. doi: 10.3758/lb.37.2.126
|
[67] | Jessup RK, O'Doherty JP (2009) It was nice not seeing you: perceptual learning with rewards in the absence of awareness. Neuron 61: 649–650. doi: 10.1016/j.neuron.2009.02.017
|
[68] | Gilbert CD, Sigman M, Crist RE (2001) The Neural Basis of Perceptual Learning. Neuron 31: 681–697. doi: 10.1016/s0896-6273(01)00424-x
|
[69] | Ahissar M, Hochstein S (1997) Task difficulty and the specificity of perceptual learning. Nature 387: 401–406. doi: 10.1038/387401a0
|
[70] | Ahissar M, Hochstein S (1993) Attentional control of early perceptual learning. Proceedings of the National Academy of Sciences of the United States of America 90: 5718–5722. doi: 10.1073/pnas.90.12.5718
|
[71] | Shiu LP, Pashler H (1992) Improvement in line orientation discrimination is retinally local but dependent on cognitive set. Perception & psychophysics 52: 582–588. doi: 10.3758/bf03206720
|
[72] | Reber AS (1976) Implicit learning of synthetic languages: the role of instructional set. Learning, memory, and cognition 2: 88–94. doi: 10.1037/0278-7393.2.1.88
|
[73] | Voss JL, Baym CL, Paller KA (2008) Accurate forced-choice recognition without awareness of memory retrieval. Learning & Memory 15: 454–459. doi: 10.1101/lm.971208
|
[74] | Voss JL, Paller KA (2009) An electrophysiological signature of unconscious recognition memory. Nature Neuroscience 12: 349–355. doi: 10.1038/nn.2260
|
[75] | Naccache L, Blandin E, Dehaene S (2002) Unconscious masked priming depends on temporal attention. Psychological Science 13: 416–424. doi: 10.1111/1467-9280.00474
|