
Goal-Dependent Use of Temporal Regularities to Orient Attention under Spatial and Action Uncertainty
References
- Anderson, B., & Sheinberg, D. L. (2008). Effects of temporal context and temporal expectancy on neural activity in inferior temporal cortex. Neuropsychologia, 46(4), 947–957. DOI: 10.1016/j.neuropsychologia.2007.11.025
- Bates, D., Mächler, M., Bolker, B., & Walker, S. (2015). Fitting Linear Mixed-Effects Models Using lme4. Journal of Statistical Software, 67(1). DOI: 10.18637/jss.v067.i01
- Beck, M. R., Hong, S. L., van Lamsweerde, A. E., & Ericson, J. M. (2014). The Effects of Incidentally Learned Temporal and Spatial Predictability on Response Times and Visual Fixations during Target Detection and Discrimination. PLoS ONE, 9(4),
e94539 . DOI: 10.1371/journal.pone.0094539 - Boettcher, S. E. P., Gresch, D., Nobre, A. C., & van Ede, F. (2021). Output planning at the input stage in visual working memory. Science Advances, 7(13),
eabe8212 . DOI: 10.1126/sciadv.abe8212 - Boettcher, S. E. P., Shalev, N., Wolfe, J. M., & Nobre, A. C. (2022). Right place, right time: Spatiotemporal predictions guide attention in dynamic visual search. Journal of Experimental Psychology: General, 151(2), 348–362. DOI: 10.1037/xge0000901
- Breska, A., & Ivry, R. B. (2016). Taxonomies of timing: Where does the cerebellum fit in? Current Opinion in Behavioral Sciences, 8, 282–288. DOI: 10.1016/j.cobeha.2016.02.034
- Calderon, C. B., Gevers, W., & Verguts, T. (2018). The unfolding action model of initiation times, movement times, and movement paths. Psychological Review, 125(5), 785–805. DOI: 10.1037/rev0000110
- Chun, M. M., & Jiang, Y. (1998). Contextual Cueing: Implicit Learning and Memory of Visual Context Guides Spatial Attention. Cognitive Psychology, 36(1), 28–71. DOI: 10.1006/cogp.1998.0681
- Chun, M. M., & Phelps, E. A. (1999). Memory deficits for implicit contextual information in amnesic subjects with hippocampal damage. Nature Neuroscience, 2(9), 844–847. DOI: 10.1038/12222
- CIE Publication No. 015: Colorimetry. Central Bureau of the CIE, Vienna (2004).
- Cisek, P. (2007). Cortical mechanisms of action selection: The affordance competition hypothesis. Philosophical Transactions of the Royal Society B: Biological Sciences, 362(1485), 1585–1599. DOI: 10.1098/rstb.2007.2054
- Cohen, M. R., & Maunsell, J. H. R. (2011). Using Neuronal Populations to Study the Mechanisms Underlying Spatial and Feature Attention. Neuron, 70(6), 1192–1204. DOI: 10.1016/j.neuron.2011.04.029
- Correa, Á. (2010).
Enhancing behavioural performance by visual temporal orienting . In A. C. Nobre & J. T. Coull (Eds.), Attention and Time (1st ed., pp. 359–370). Oxford: Oxford University Press. DOI: 10.1093/acprof:oso/9780199563456.003.0026 - Cotti, J., Rohenkohl, G., Stokes, M., Nobre, A. C., & Coull, J. T. (2011). Functionally dissociating temporal and motor components of response preparation in left intraparietal sulcus. NeuroImage, 54(2), 1221–1230. DOI: 10.1016/j.neuroimage.2010.09.038
- Coull, J. T., & Nobre, A. C. (1998). Where and When to Pay Attention: The Neural Systems for Directing Attention to Spatial Locations and to Time Intervals as Revealed by Both PET and fMRI. The Journal of Neuroscience, 18(18), 7426–7435. DOI: 10.1523/JNEUROSCI.18-18-07426.1998
- Covington, N. V., Brown-Schmidt, S., & Duff, M. C. (2018). The Necessity of the Hippocampus for Statistical Learning. Journal of Cognitive Neuroscience, 30(5), 680–697. DOI: 10.1162/jocn_a_01228
- Denison, R. N., Carrasco, M., & Heeger, D. J. (2021). A dynamic normalization model of temporal attention. Nature Human Behaviour, 5(12), 1674–1685. DOI: 10.1038/s41562-021-01129-1
- Denison, R. N., Heeger, D. J., & Carrasco, M. (2017). Attention flexibly trades off across points in time. Psychonomic Bulletin & Review, 24(4), 1142–1151. DOI: 10.3758/s13423-016-1216-1
- Denison, R. N., Parker, J. A., & Carrasco, M. (2020). Modeling pupil responses to rapid sequential events. Behavior Research Methods, 52(5), 1991–2007. DOI: 10.3758/s13428-020-01368-6
- Denison, R. N., Yuval-Greenberg, S., & Carrasco, M. (2019). Directing Voluntary Temporal Attention Increases Fixational Stability. The Journal of Neuroscience, 39(2), 353–363. DOI: 10.1523/JNEUROSCI.1926-18.2018
- Doherty, J. R., Rao, A, Mesulam, M. M., & Nobre, A. C. (2005). Synergistic Effect of Combined Temporal and Spatial Expectations on Visual Attention. Journal of Neuroscience, 25(36), 8259–8266. DOI: 10.1523/JNEUROSCI.1821-05.2005
- Duyar, A., Denison, R. N., & Carrasco, M. (2023). Exogenous temporal attention varies with temporal uncertainty. Journal of Vision, 23(3),
9 . DOI: 10.1167/jov.23.3.9 - Fernández, A., Denison, R. N., & Carrasco, M. (2019). Temporal attention improves perception similarly at foveal and parafoveal locations. Journal of Vision, 19(1),
12 . DOI: 10.1167/19.1.12 - Gabay, S., & Henik, A. (2010). Temporal expectancy modulates inhibition of return in a discrimination task. Psychonomic Bulletin & Review, 17(1), 47–51. DOI: 10.3758/PBR.17.1.47
- Ghose, G. M., & Maunsell, J. H. R. (2002). Attentional modulation in visual cortex depends on task timing. Nature, 419(6907), 616–620. DOI: 10.1038/nature01057
- Goldfarb, E. V., Chun, M. M., & Phelps, E. A. (2016). Memory-Guided Attention: Independent Contributions of the Hippocampus and Striatum. Neuron, 89(2), 317–324. DOI: 10.1016/j.neuron.2015.12.014
- Griffin, I., Miniussi, C., & Nobre, A. (2002). Multiple mechanisms of selective attention: Differential modulation of stimulus processing by attention to space or time. Neuropsychologia, 40(13), 2325–2340. DOI: 10.1016/S0028-3932(02)00087-8
- Heideman, S. G., Rohenkohl, G., Chauvin, J. J., Palmer, C. E., van Ede, F., & Nobre, A. C. (2018). Anticipatory neural dynamics of spatial-temporal orienting of attention in younger and older adults. NeuroImage, 178, 46–56. DOI: 10.1016/j.neuroimage.2018.05.002
- Heideman, S. G., van Ede, F., & Nobre, A. C. (2018a). Early Behavioural Facilitation by Temporal Expectations in Complex Visual-motor Sequences. Neuroscience, 389, 74–84. DOI: 10.1016/j.neuroscience.2018.05.014
- Heideman, S. G., van Ede, F., & Nobre, A. C. (2018b). Temporal alignment of anticipatory motor cortical beta lateralisation in hidden visual-motor sequences. European Journal of Neuroscience, 48(8), 2684–2695. DOI: 10.1111/ejn.13700
- Janssen, P., & Shadlen, M. N. (2005). A representation of the hazard rate of elapsed time in macaque area LIP. Nature Neuroscience, 8(2), 234–241. DOI: 10.1038/nn1386
- Kingstone, A. (1992). Combining Expectancies. The Quarterly Journal of Experimental Psychology Section A, 44(1), 69–104. DOI: 10.1080/14640749208401284
- Kornysheva, K., Sierk, A., & Diedrichsen, J. (2013). Interaction of temporal and ordinal representations in movement sequences. Journal of Neurophysiology, 109(5), 1416–1424. DOI: 10.1152/jn.00509.2012
- Lima, B., Singer, W., & Neuenschwander, S. (2011). Gamma Responses Correlate with Temporal Expectation in Monkey Primary Visual Cortex. The Journal of Neuroscience, 31(44), 15919–15931. DOI: 10.1523/JNEUROSCI.0957-11.2011
- Li, Q., Joo, S. J., Yeatman, J. D., & Reinecke, K. (2020). Controlling for Participants’ Viewing Distance in Large-Scale, Psychophysical Online Experiments Using a Virtual Chinrest. Scientific Reports, 10(1),
904 . DOI: 10.1038/s41598-019-57204-1 - Lo, S., & Andrews, S. (2015). To transform or not to transform: Using generalized linear mixed models to analyse reaction time data. Frontiers in Psychology,
6 . DOI: 10.3389/fpsyg.2015.01171 - Los, S. A. (2010).
Foreperiod and sequential effects: Theory and data . In Attention and Time (pp. 289–302). Oxford University Press. DOI: 10.1093/acprof:oso/9780199563456.003.0021 - Luce, R. D. (1991). Response Times: Their Role in Inferring Elementary Mental Organization. Oxford University Press.
- MacKay, A., & Juola, J. F. (2007). Are spatial and temporal attention independent? Perception & Psychophysics, 69(6), 972–979. DOI: 10.3758/BF03193935
- Matuschek, H., Kliegl, R., Vasishth, S., Baayen, H., & Bates, D. (2017). Balancing Type I error and power in linear mixed models. Journal of Memory and Language, 94, 305–315. DOI: 10.1016/j.jml.2017.01.001
- Maunsell, J. H. R., & Treue, S. (2006). Feature-based attention in visual cortex. Trends in Neurosciences, 29(6), 317–322. DOI: 10.1016/j.tins.2006.04.001
- Miniussi, C., Wilding, C. J., & Nobre, A. (1999). Orienting attention in time Modulation of brain potentials. Brain, 122, 1507–1518. DOI: 10.1093/brain/122.8.1507
- Niemi, P., & Naatanen, R. (1981). Foreperiod and Simple Reaction Time. Psychological Bulletin, 89(1), 133–162. DOI: 10.1037/0033-2909.89.1.133
- Nobre, A. C. (2001). Orienting attention to instants in time. Neuropsychologia, 39(12), 1317–1328. DOI: 10.1016/S0028-3932(01)00120-8
- Nobre, A. C. (2010).
How can temporal expectations bias perception and action? In A. C. Nobre & J. T. Coull (Eds.), Attention and Time (1st ed., pp. 371–392). Oxford: Oxford University Press. DOI: 10.1093/acprof:oso/9780199563456.003.0027 - Nobre, A. C. (2018).
Chapter 6: Attention . In Stevens’ Handbook of Experimental Psychology and Cognitive Neuroscience (4th Edition, Vol. 2, pp. 241–316). John Wiley & Sons. DOI: 10.1002/9781119170174.epcn206 - Nobre, A. C., & Rohenkohl, G. (2014). Time for the Fourth Dimension in Attention In A. Nobre & S. Kastner, (Eds.), Vol. 1. Oxford University Press. DOI: 10.1093/oxfordhb/9780199675111.013.036
- Nobre, A. C., & van Ede, F. (2018). Anticipated moments: Temporal structure in attention. Nature Reviews Neuroscience, 19(1), 34–48. DOI: 10.1038/nrn.2017.141
- Nobre, A. C., & Van Ede, F. (2023). Attention in flux. Neuron, 111(7), 971–986. DOI: 10.1016/j.neuron.2023.02.032
- Olson, I., & Chun, M. (2001). Temporal Contextual Cuing of Visual Attention. Journal of Experimental Psychology: Learning, Memory, and Cognition, 27(5), 1299–1313. DOI: 10.1037//0278-7393.27.5.1299
- O’Reilly, J. X., McCarthy, K. J., Capizzi, M., & Nobre, A. C. (2008). Acquisition of the Temporal and Ordinal Structure of Movement Sequences in Incidental Learning. Journal of Neurophysiology, 99(5), 2731–2735. DOI: 10.1152/jn.01141.2007
- Palmieri, H., Fernández, A., & Carrasco, M. (2023). Microsaccades and temporal attention at different locations of the visual field. Journal of Vision, 23(5),
6 . DOI: 10.1167/jov.23.5.6 - Peirce, J., Gray, J. R., Simpson, S., MacAskill, M., Höchenberger, R., Sogo, H., Kastman, E., & Lindeløv, J. K. (2019). PsychoPy2: Experiments in behavior made easy. Behavior Research Methods, 51(1), 195–203. DOI: 10.3758/s13428-018-01193-y
- Pratt, J., & Abrams, R. A. (1999). Inhibition of return in discrimination tasks. Journal of Experimental Psychology: Human Perception and Performance, 25(1), 229–242. DOI: 10.1037/0096-1523.25.1.229
- Rieth, C. A., & Huber, D. E. (2013). Implicit learning of spatiotemporal contingencies in spatial cueing. Journal of Experimental Psychology: Human Perception and Performance, 39(4), 1165–1180. DOI: 10.1037/a0030870
- Rohenkohl, G., Gould, I. C., Pessoa, J., & Nobre, A. C. (2014). Combining spatial and temporal expectations to improve visual perception. Journal of Vision, 14(4),
8 . DOI: 10.1167/14.4.8 - Rolke, B., Festl, F., & Seibold, V. C. (2016). Toward the influence of temporal attention on the selection of targets in a visual search task: An ERP study: Visual processing enhancements by temporal attention. Psychophysiology, 53(11), 1690–1701. DOI: 10.1111/psyp.12734
- RStudio Team. (2020).
RStudio: Integrated Development for R . Boston, MA: RStudio, PBC. URL:http://www.rstudio.com/ - Salet, J. M., Kruijne, W., & van Rijn, H. (2021). Implicit learning of temporal behavior in complex dynamic environments. Psychonomic Bulletin & Review, 28(4), 1270–1280. DOI: 10.3758/s13423-020-01873-x
- Sauter, M., Draschkow, D., & Mack, W. (2020). Building, Hosting and Recruiting: A Brief Introduction to Running Behavioral Experiments Online. Brain Sciences, 10(4),
251 . DOI: 10.3390/brainsci10040251 - Seibold, V. C., Stepper, M. Y., & Rolke, B. (2020). Temporal attention boosts perceptual effects of spatial attention and feature-based attention. Brain and Cognition, 142,
105570 . DOI: 10.1016/j.bandc.2020.105570 - Shin, J. C., & Ivry, R. B. (2002). Concurrent learning of temporal and spatial sequences. Journal of Experimental Psychology: Learning, Memory, and Cognition, 28(3), 445–457. DOI: 10.1037/0278-7393.28.3.445
- Tal-Perry, N., & Yuval-Greenberg, S. (2022). The Spatiotemporal Link of Temporal Expectations: Contextual Temporal Expectation Is Independent of Spatial Attention. The Journal of Neuroscience, 42(12), 2516–2523. DOI: 10.1523/JNEUROSCI.1555-21.2022
- Thomaschke, R., & Dreisbach, G. (2013). Temporal Predictability Facilitates Action, Not Perception. Psychological Science, 24(7), 1335–1340. DOI: 10.1177/0956797612469411
- Thomaschke, R., Hoffmann, J., Haering, C., & Kiesel, A. (2016). Time-Based Expectancy for Task Relevant Stimulus Features. Timing & Time Perception, 4(3), 248–270. DOI: 10.1163/22134468-00002069
- Townsend, J. T., & Ashby, F. G. (1983). Stochastic modeling of elementary psychological processes. Cambridge University Press.
- Trillenberg, P., Verleger, R., Wascher, E., Wauschkuhn, B., & Wessel, K. (2000). CNV and temporal uncertainty with ‘ageing’ and ‘non-ageing’ S1–S2 intervals. Clinical Neurophysiology, 111(7), 1216–1226. DOI: 10.1016/S1388-2457(00)00274-1
- Turk-Browne, N. B., Scholl, B. J., Chun, M. M., & Johnson, M. K. (2009). Neural Evidence of Statistical Learning: Efficient Detection of Visual Regularities Without Awareness. Journal of Cognitive Neuroscience, 21(10), 1934–1945. DOI: 10.1162/jocn.2009.21131
- van Ede, F., Rohenkohl, G., Gould, I., & Nobre, A. C. (2020). Purpose-Dependent Consequences of Temporal Expectations Serving Perception and Action. The Journal of Neuroscience, 40(41), 7877–7886. DOI: 10.1523/JNEUROSCI.1134-20.2020
- van Elswijk, G., Kleine, B. U., Overeem, S., & Stegeman, D. F. (2007). Expectancy Induces Dynamic Modulation of Corticospinal Excitability. Journal of Cognitive Neuroscience, 19(1), 121–131. DOI: 10.1162/jocn.2007.19.1.121
- Vangkilde, S., Petersen, A., & Bundesen, C. (2013). Temporal expectancy in the context of a theory of visual attention. Philosophical Transactions of the Royal Society B: Biological Sciences, 368(1628),
20130054 . DOI: 10.1098/rstb.2013.0054 - Wagener, A., & Hoffmann, J. (2010). Temporal Cueing of Target-Identity and Target-Location. Experimental Psychology, 57(6), 436–445. DOI: 10.1027/1618-3169/a000054
- Wang, M., Huang, Y., Luo, H., & Zhang, H. (2020). Sustained Visual Priming Effects Can Emerge from Attentional Oscillation and Temporal Expectation. The Journal of Neuroscience, 40(18), 3657–3674. DOI: 10.1523/JNEUROSCI.2539-19.2020
- Warren, S. G., Yacoub, E., & Ghose, G. M. (2014). Featural and temporal attention selectively enhance task-appropriate representations in human primary visual cortex. Nature Communications, 5(1),
5643 . DOI: 10.1038/ncomms6643 - Weinbach, N., Shofty, I., Gabay, S., & Henik, A. (2015). Endogenous temporal and spatial orienting: Evidence for two distinct attentional mechanisms. Psychonomic Bulletin & Review, 22(4), 967–973. DOI: 10.3758/s13423-014-0750-y
- Xu, Z., Los, S. A., & Theeuwes, J. (2021). Attentional Suppression in Time and Space. Journal of Experimental Psychology: Human Perception and Performance, 47(8), 1056–1062. DOI: 10.1037/xhp0000925
- Zhao, J., Al-Aidroos, N., & Turk-Browne, N. B. (2013). Attention Is Spontaneously Biased Toward Regularities. Psychological Science, 24(5), 667–677. DOI: 10.1177/0956797612460407
DOI: https://doi.org/10.5334/joc.360 | Journal eISSN: 2514-4820
Language: English
Submitted on: Sep 29, 2023
Accepted on: Mar 28, 2024
Published on: Apr 25, 2024
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© 2024 Irene Echeverria-Altuna, Anna C. Nobre, Sage E. P. Boettcher, published by Ubiquity Press
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