Skip to main content
Top
Gepubliceerd in: Psychological Research 1/2021

06-09-2019 | Original Article

Change deafness can be reduced, but not eliminated, using brief training interventions

Auteurs: Vanessa C. Irsik, Joel S. Snyder

Gepubliceerd in: Psychological Research | Uitgave 1/2021

Log in om toegang te krijgen
share
DELEN

Deel dit onderdeel of sectie (kopieer de link)

  • Optie A:
    Klik op de rechtermuisknop op de link en selecteer de optie “linkadres kopiëren”
  • Optie B:
    Deel de link per e-mail

Abstract

Research on change deafness indicates there are substantial limitations to listeners’ perception of which objects are present in complex auditory scenes, an ability that is important for many everyday situations. Experiment 1 examined the extent to which change deafness could be reduced by training with performance feedback compared to no training. Experiment 2 compared the efficacy of training with detailed feedback that identified the change and provided performance feedback on each trial, training without feedback, and no training. We further examined the timescale over which improvement unfolded by examining performance using an immediate post-test and a second post-test 12 h later. We were able to reduce, but not eliminate, change deafness for all groups, and determined that the practice content strongly impacted bias and response strategy. Training with simple performance feedback reduced change deafness but increased bias and false alarm rates, while providing a more detailed feedback improved change detection without affecting bias. Together, these findings suggest that change deafness can be reduced if a relatively small amount of practice is completed. When bias did not impede performance during the first post-test, the majority of the learning following training occurred immediately, suggesting that fast within-session learning primarily supported improvement on the task.
Bijlagen
Alleen toegankelijk voor geautoriseerde gebruikers
Literatuur
go back to reference Aberg, K. C., & Herzog, M. H. (2012). Different types of feedback change decision criterion and sensitivity differently in perceptual learning. Journal of Vision, 12(3), 1–11. Aberg, K. C., & Herzog, M. H. (2012). Different types of feedback change decision criterion and sensitivity differently in perceptual learning. Journal of Vision, 12(3), 1–11.
go back to reference Ahissar, M., & Hochstein, S. (2004). The reverse hierarchy theory of visual perceptual learning. Trends in Cognitive Science, 8, 457–464. Ahissar, M., & Hochstein, S. (2004). The reverse hierarchy theory of visual perceptual learning. Trends in Cognitive Science, 8, 457–464.
go back to reference Alain, C. (2007). Breaking the wave: effects of attention and learning on concurrent sound perception. Hearing Research, 229(1–2), 225–236.PubMed Alain, C. (2007). Breaking the wave: effects of attention and learning on concurrent sound perception. Hearing Research, 229(1–2), 225–236.PubMed
go back to reference Alain, C., Snyder, J. S., He, Y., & Reinke, K. S. (2007). Changes in auditory cortex parallel rapid perceptual learning. Cerebral Cortex, 17(5), 1074–1084.PubMed Alain, C., Snyder, J. S., He, Y., & Reinke, K. S. (2007). Changes in auditory cortex parallel rapid perceptual learning. Cerebral Cortex, 17(5), 1074–1084.PubMed
go back to reference Alvarez, G. A., & Cavanagh, P. (2004). The capacity of visual short-term memory is set both by visual information load and by number of objects. Psychological Science, 15(2), 106–111.PubMed Alvarez, G. A., & Cavanagh, P. (2004). The capacity of visual short-term memory is set both by visual information load and by number of objects. Psychological Science, 15(2), 106–111.PubMed
go back to reference Amitay, S., Moore, D. R., Molloy, K., & Halliday, L. F. (2015). Feedback valence affects auditory perceptual learning independently of feedback probability. PLoS One, 10(5), e0126412.PubMedPubMedCentral Amitay, S., Moore, D. R., Molloy, K., & Halliday, L. F. (2015). Feedback valence affects auditory perceptual learning independently of feedback probability. PLoS One, 10(5), e0126412.PubMedPubMedCentral
go back to reference Atienza, M., Cantero, J. L., & Dominguez-Marin, E. (2002). The time course of neural changes underlying auditory perceptual learning. Learning & Memory, 9(3), 138–150. Atienza, M., Cantero, J. L., & Dominguez-Marin, E. (2002). The time course of neural changes underlying auditory perceptual learning. Learning & Memory, 9(3), 138–150.
go back to reference Awh, E., Barton, B., & Vogel, E. K. (2007). Visual working memory represents a fixed number of items, regardless of complexity. Psychological Science, 18, 622–628.PubMed Awh, E., Barton, B., & Vogel, E. K. (2007). Visual working memory represents a fixed number of items, regardless of complexity. Psychological Science, 18, 622–628.PubMed
go back to reference Backer, K. C., & Alain, C. (2012). Orienting attention to sound object representations attenuates change deafness. Journal of Experimental Psychology: Human Perception and Performance, 38(6), 1554–1566.PubMed Backer, K. C., & Alain, C. (2012). Orienting attention to sound object representations attenuates change deafness. Journal of Experimental Psychology: Human Perception and Performance, 38(6), 1554–1566.PubMed
go back to reference Baldwin, T. T., & Ford, J. K. (1988). Transfer of learning: a review and directions for future research. Personnel Psychology, 41, 63–105. Baldwin, T. T., & Ford, J. K. (1988). Transfer of learning: a review and directions for future research. Personnel Psychology, 41, 63–105.
go back to reference Banai, K., & Lavner, Y. (2014). The effect of training length on the perceptual learning of time compressed speech and its generalization. Journal of the Acoustical Society of America, 136(4), 1908–1917. Banai, K., & Lavner, Y. (2014). The effect of training length on the perceptual learning of time compressed speech and its generalization. Journal of the Acoustical Society of America, 136(4), 1908–1917.
go back to reference Beck, M. R., & Levin, D. T. (2003). The role of representational volatility in recognizing pre- and postchange objects. Perception & Psychophysics, 65(3), 458–468. Beck, M. R., & Levin, D. T. (2003). The role of representational volatility in recognizing pre- and postchange objects. Perception & Psychophysics, 65(3), 458–468.
go back to reference Beck, M. R., Martin, B. A., Smitherman, E., & Gaschen, L. (2013). Eyes-on training and radiological expertise: an examination of expertise development and its effects on visual working memory. Human Factors, 55(4), 747–763.PubMed Beck, M. R., Martin, B. A., Smitherman, E., & Gaschen, L. (2013). Eyes-on training and radiological expertise: an examination of expertise development and its effects on visual working memory. Human Factors, 55(4), 747–763.PubMed
go back to reference Becker, M. W., Pashler, H., & Anstis, S. M. (2000). The role of iconic memory in change-detection tasks. Perception, 29, 273–286.PubMed Becker, M. W., Pashler, H., & Anstis, S. M. (2000). The role of iconic memory in change-detection tasks. Perception, 29, 273–286.PubMed
go back to reference Beste, C., & Dinse, H. R. (2013). Learning without training. Current Biology, 23(11), R489–R499.PubMed Beste, C., & Dinse, H. R. (2013). Learning without training. Current Biology, 23(11), R489–R499.PubMed
go back to reference Brady, T. F., Konkle, T., & Alvarez, G. A. (2011). A review of visual memory capacity: beyond individual items and towards structured representations. Journal of Vision, 11(5), 1–34. Brady, T. F., Konkle, T., & Alvarez, G. A. (2011). A review of visual memory capacity: beyond individual items and towards structured representations. Journal of Vision, 11(5), 1–34.
go back to reference Bregman, A. S. (1990). Auditory scene analysis: the perceptual organization of sound. Cambridge: The MIT Press. Bregman, A. S. (1990). Auditory scene analysis: the perceptual organization of sound. Cambridge: The MIT Press.
go back to reference Burgers, C., Eden, A., van Engelenburg, M. D., & Buningh, S. (2015). How feedback boosts motivation and play in a brain-training game. Computers in Human Behavior, 48, 94–103. Burgers, C., Eden, A., van Engelenburg, M. D., & Buningh, S. (2015). How feedback boosts motivation and play in a brain-training game. Computers in Human Behavior, 48, 94–103.
go back to reference Clapp, W. C., Hamm, J. P., Kirk, I. J., & Teyler, T. J. (2012). Translating long-term potentiation from animals to humans: a novel method for noninvasive assessment of cortical plasticity. Biological Psychiatry, 71(6), 496–502.PubMed Clapp, W. C., Hamm, J. P., Kirk, I. J., & Teyler, T. J. (2012). Translating long-term potentiation from animals to humans: a novel method for noninvasive assessment of cortical plasticity. Biological Psychiatry, 71(6), 496–502.PubMed
go back to reference Constantino, F. C., Pinggera, L., Paranamana, S., Kashino, M., & Chait, M. (2012). Detection of appearing and disappearing objects in complex acoustic scenes. PLoS One, 7(9), e46167. Constantino, F. C., Pinggera, L., Paranamana, S., Kashino, M., & Chait, M. (2012). Detection of appearing and disappearing objects in complex acoustic scenes. PLoS One, 7(9), e46167.
go back to reference Cowan, N., Saults, J. S., & Nugent, L. D. (1997). The role of absolute and relative amounts of time in forgetting within immediate memory: the case of tone-pitch comparisons. Psychonomic Bulletin & Review, 4, 393–397. Cowan, N., Saults, J. S., & Nugent, L. D. (1997). The role of absolute and relative amounts of time in forgetting within immediate memory: the case of tone-pitch comparisons. Psychonomic Bulletin & Review, 4, 393–397.
go back to reference Delhommeau, K., Micheyl, C., & Jouvent, R. (2005). Generalization of frequency discrimination learning across frequencies and ears: implications for underlying neural mechanisms in humans. Journal of the Association for Research in Otolaryngology, 6, 171–179.PubMedPubMedCentral Delhommeau, K., Micheyl, C., & Jouvent, R. (2005). Generalization of frequency discrimination learning across frequencies and ears: implications for underlying neural mechanisms in humans. Journal of the Association for Research in Otolaryngology, 6, 171–179.PubMedPubMedCentral
go back to reference Demany, L., & Semal, C. (2002). Learning to perceive pitch differences. Journal of the Acoustical Society of America, 111(3), 1377–1388. Demany, L., & Semal, C. (2002). Learning to perceive pitch differences. Journal of the Acoustical Society of America, 111(3), 1377–1388.
go back to reference Demany, L., Trost, W., Serman, M., & Semal, C. (2008). Auditory change detection: simple sounds are not memorized better than complex sounds. Psychological Science, 19(1), 85–91.PubMed Demany, L., Trost, W., Serman, M., & Semal, C. (2008). Auditory change detection: simple sounds are not memorized better than complex sounds. Psychological Science, 19(1), 85–91.PubMed
go back to reference Dickerson, K., & Gaston, J. R. (2014). Did you hear that? The role of stimulus similarity and uncertainty in auditory change deafness. Frontiers in Psychology, 5, 1–5. Dickerson, K., & Gaston, J. R. (2014). Did you hear that? The role of stimulus similarity and uncertainty in auditory change deafness. Frontiers in Psychology, 5, 1–5.
go back to reference Donovan, J. J., & Radosevich, D. I. (1999). A meta-analytic review of the distribution of practice effect: now you see it, now you don’t. Journal of Applied Psychology, 84, 795–805. Donovan, J. J., & Radosevich, D. I. (1999). A meta-analytic review of the distribution of practice effect: now you see it, now you don’t. Journal of Applied Psychology, 84, 795–805.
go back to reference Dosher, B. A., & Lu, Z. (2007). The functional form of performance improvements in perceptual learning: learning rates and transfer. Psychological Science, 18(6), 531–539.PubMed Dosher, B. A., & Lu, Z. (2007). The functional form of performance improvements in perceptual learning: learning rates and transfer. Psychological Science, 18(6), 531–539.PubMed
go back to reference Eng, H. Y., Chen, D., & Jiang, Y. V. (2005). Visual working memory for simple and complex visual stimuli. Psychonomic Bulletin & Review, 12(6), 1127–1133. Eng, H. Y., Chen, D., & Jiang, Y. V. (2005). Visual working memory for simple and complex visual stimuli. Psychonomic Bulletin & Review, 12(6), 1127–1133.
go back to reference Eramudugolla, R., Irvine, D. R. F., McAnally, K. I., Martin, R. L., & Mattingley, J. B. (2005). Directed attention eliminates “change deafness” in complex auditory scenes. Current Biology, 15(12), 1108–1113.PubMed Eramudugolla, R., Irvine, D. R. F., McAnally, K. I., Martin, R. L., & Mattingley, J. B. (2005). Directed attention eliminates “change deafness” in complex auditory scenes. Current Biology, 15(12), 1108–1113.PubMed
go back to reference Fahle, M., Edelman, S., & Poggio, T. (1995). Fast perceptual learning in hyperacuity. Vision Research, 25(21), 3003–3013. Fahle, M., Edelman, S., & Poggio, T. (1995). Fast perceptual learning in hyperacuity. Vision Research, 25(21), 3003–3013.
go back to reference Faul, F., Erdfelder, E., Lang, A. G., & Buchner, A. (2007). G*Power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behavior Research Methods, 39, 175–191.PubMed Faul, F., Erdfelder, E., Lang, A. G., & Buchner, A. (2007). G*Power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behavior Research Methods, 39, 175–191.PubMed
go back to reference Garcia, A., Kuai, S., & Kourtzi, Z. (2013). Differences in the time course of learning for hard compared to easy training. Frontiers in Psychology, 4, 1–8. Garcia, A., Kuai, S., & Kourtzi, Z. (2013). Differences in the time course of learning for hard compared to easy training. Frontiers in Psychology, 4, 1–8.
go back to reference Gaspar, J. G., Neider, M. B., Simons, D. J., McCarley, J. S., & Kramer, A. F. (2013). Change detection: training and transfer. PLoS One, 8(6), 1–7. (e67781). Gaspar, J. G., Neider, M. B., Simons, D. J., McCarley, J. S., & Kramer, A. F. (2013). Change detection: training and transfer. PLoS One, 8(6), 1–7. (e67781).
go back to reference Gaston, J., Dickerson, K., Hipp, D., & Gerhardstein, P. (2017). Change deafness for real spatialized environmental scenes. Cognitive Research: Principles and Implications, 2(29), 1–15. Gaston, J., Dickerson, K., Hipp, D., & Gerhardstein, P. (2017). Change deafness for real spatialized environmental scenes. Cognitive Research: Principles and Implications, 2(29), 1–15.
go back to reference Gilbert, C. D. (1994). Early perceptual learning. Proceedings of the National Academy of Sciences, 91, 1195–1197. Gilbert, C. D. (1994). Early perceptual learning. Proceedings of the National Academy of Sciences, 91, 1195–1197.
go back to reference Gilbert, C. D., & Wiesel, T. N. (1992). Receptive field duration dynamics in adult primary visual cortex. Nature, 356, 150–152.PubMed Gilbert, C. D., & Wiesel, T. N. (1992). Receptive field duration dynamics in adult primary visual cortex. Nature, 356, 150–152.PubMed
go back to reference Gottselig, J. M., Hofer-Tinguely, G., Borbely, A. A., Regel, S. J., Landolt, H. P., Retey, J. V., & Achermann, P. (2004). Sleep and rest facilitate auditory learning. Neuroscience, 127(3), 557–561.PubMed Gottselig, J. M., Hofer-Tinguely, G., Borbely, A. A., Regel, S. J., Landolt, H. P., Retey, J. V., & Achermann, P. (2004). Sleep and rest facilitate auditory learning. Neuroscience, 127(3), 557–561.PubMed
go back to reference Greene, M. R., & Oliva, A. (2009). Recognition of natural scenes from global properties: Seeing the forest without representing the trees. Cognitive Psychology, 58, 137–176.PubMed Greene, M. R., & Oliva, A. (2009). Recognition of natural scenes from global properties: Seeing the forest without representing the trees. Cognitive Psychology, 58, 137–176.PubMed
go back to reference Greenspan, S. L., Nusbaum, H. C., & Pisoni, D. B. (1988). Perceptual-learning of synthetic speech produced by rule. Journal of Experimental Psychology. Learning, Memory, and Cognition, 14(3), 421–433.PubMedPubMedCentral Greenspan, S. L., Nusbaum, H. C., & Pisoni, D. B. (1988). Perceptual-learning of synthetic speech produced by rule. Journal of Experimental Psychology. Learning, Memory, and Cognition, 14(3), 421–433.PubMedPubMedCentral
go back to reference Gregg, M. K., Irsik, V. C., & Snyder, J. S. (2014). Change deafness and object encoding with recognizable and unrecognizable sounds. Neuropsychologia, 61, 19–30.PubMed Gregg, M. K., Irsik, V. C., & Snyder, J. S. (2014). Change deafness and object encoding with recognizable and unrecognizable sounds. Neuropsychologia, 61, 19–30.PubMed
go back to reference Gregg, M. K., Irsik, V. C., & Snyder, J. S. (2017). Effects of capacity limits, memory loss, and sound type in change deafness. Attention, Perception, & Psychophysics, 79, 2564–2575. Gregg, M. K., Irsik, V. C., & Snyder, J. S. (2017). Effects of capacity limits, memory loss, and sound type in change deafness. Attention, Perception, & Psychophysics, 79, 2564–2575.
go back to reference Gregg, M. K., & Samuel, A. G. (2008). Change deafness and the organizational properties of sounds. Journal of Experimental Psychology: Human Perception and Performance, 34(4), 974–991.PubMed Gregg, M. K., & Samuel, A. G. (2008). Change deafness and the organizational properties of sounds. Journal of Experimental Psychology: Human Perception and Performance, 34(4), 974–991.PubMed
go back to reference Gregg, M. K., & Samuel, A. G. (2009). The importance of semantics in auditory representations. Attention, Perception, & Psychophysics, 71(3), 607–619. Gregg, M. K., & Samuel, A. G. (2009). The importance of semantics in auditory representations. Attention, Perception, & Psychophysics, 71(3), 607–619.
go back to reference Gregg, M. K., & Snyder, J. S. (2012). Enhanced sensory processing accompanies successful detection of change for real-world sounds. NeuroImage, 62, 113–119.PubMed Gregg, M. K., & Snyder, J. S. (2012). Enhanced sensory processing accompanies successful detection of change for real-world sounds. NeuroImage, 62, 113–119.PubMed
go back to reference Hawkey, D. J., Amitay, S., & Moore, D. R. (2004). Early and rapid perceptual learning. Nature Neuroscience, 7(10), 1055–1056.PubMed Hawkey, D. J., Amitay, S., & Moore, D. R. (2004). Early and rapid perceptual learning. Nature Neuroscience, 7(10), 1055–1056.PubMed
go back to reference Herzog, M. H., Ewald, K. R. F., Hermens, F., & Fahle, M. (2006). Reverse feedback induces position and orientation specific changes. Vision Research, 46(22), 3761–3770.PubMed Herzog, M. H., Ewald, K. R. F., Hermens, F., & Fahle, M. (2006). Reverse feedback induces position and orientation specific changes. Vision Research, 46(22), 3761–3770.PubMed
go back to reference Herzog, M. H., & Fahle, M. (1997). The role of feedback in learning a vernier discrimination task. Vision Research, 37(15), 2133–2141.PubMed Herzog, M. H., & Fahle, M. (1997). The role of feedback in learning a vernier discrimination task. Vision Research, 37(15), 2133–2141.PubMed
go back to reference Herzog, M. H., & Fahle, M. (1998). Modeling perceptual learning: difficulties and how they can be overcome. Biological Cybernetics, 78, 107–117.PubMed Herzog, M. H., & Fahle, M. (1998). Modeling perceptual learning: difficulties and how they can be overcome. Biological Cybernetics, 78, 107–117.PubMed
go back to reference Herzog, M. H., & Fahle, M. (1999). Effects of biased feedback on learning and deciding in a vernier discrimination task. Vision Research, 39(25), 4232–4243.PubMed Herzog, M. H., & Fahle, M. (1999). Effects of biased feedback on learning and deciding in a vernier discrimination task. Vision Research, 39(25), 4232–4243.PubMed
go back to reference Irsik, V. C., Bosch, Vanden, der Nederlanden, C. M., & Snyder, J. S. (2016). Broad attention to multiple individual objects may facilitate change detection with complex auditory scenes. Journal of Experimental Psychology: Human Perception and Performance, 42(11), 1806–1817.PubMed Irsik, V. C., Bosch, Vanden, der Nederlanden, C. M., & Snyder, J. S. (2016). Broad attention to multiple individual objects may facilitate change detection with complex auditory scenes. Journal of Experimental Psychology: Human Perception and Performance, 42(11), 1806–1817.PubMed
go back to reference Irvine, D., Martin, R., Klimkeit, E., & Smith, R. (2000). Specificity of perceptual learning in a frequency discrimination task. The Journal of the Acoustical Society of America, 108(6), 2964–2968.PubMed Irvine, D., Martin, R., Klimkeit, E., & Smith, R. (2000). Specificity of perceptual learning in a frequency discrimination task. The Journal of the Acoustical Society of America, 108(6), 2964–2968.PubMed
go back to reference Jones, P. R., Moore, D. R., Shub, D. E., & Amitay, S. (2015). The role of response bias in perceptual learning. Journal of Experimental Psychology. Learning, Memory, and Cognition, 41(5), 1456–1470.PubMedPubMedCentral Jones, P. R., Moore, D. R., Shub, D. E., & Amitay, S. (2015). The role of response bias in perceptual learning. Journal of Experimental Psychology. Learning, Memory, and Cognition, 41(5), 1456–1470.PubMedPubMedCentral
go back to reference Kapadia, M. K., Gilbert, C. D., & Westheimer, G. (1994). Measure for short-term cortical plasticity in human vision. Journal of Neuroscience, 14(1), 451–457.PubMed Kapadia, M. K., Gilbert, C. D., & Westheimer, G. (1994). Measure for short-term cortical plasticity in human vision. Journal of Neuroscience, 14(1), 451–457.PubMed
go back to reference Karni, A. (1996). The acquisition of perceptual and motor skills: a memory system in the adult human cortex. Cognitive Brain Research, 5(1–2), 39–48.PubMed Karni, A. (1996). The acquisition of perceptual and motor skills: a memory system in the adult human cortex. Cognitive Brain Research, 5(1–2), 39–48.PubMed
go back to reference Karni, A., & Bertini, G. (1997). Learning perceptual skills: behavioral probes into adult cortical plasticity. Current Opinion in Neurobiology, 7, 530–535.PubMed Karni, A., & Bertini, G. (1997). Learning perceptual skills: behavioral probes into adult cortical plasticity. Current Opinion in Neurobiology, 7, 530–535.PubMed
go back to reference 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, 88(11), 4966–4970. 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, 88(11), 4966–4970.
go back to reference Karni, A., & Sagi, D. (1993). The time course of learning a visual skill. Nature, 365(6443), 250–252.PubMed Karni, A., & Sagi, D. (1993). The time course of learning a visual skill. Nature, 365(6443), 250–252.PubMed
go back to reference Lee, T. D., & Genovese, E. D. (1988). Distribution of practice in motor skill acquisition: learning and performance effects reconsidered. Research Quarterly, 59, 277–287. Lee, T. D., & Genovese, E. D. (1988). Distribution of practice in motor skill acquisition: learning and performance effects reconsidered. Research Quarterly, 59, 277–287.
go back to reference Levin, D. T., Momen, N., Drivdahl, S. B., & Simons, D. J. (2000). Change blindness blindness: the metacognitive error of overestimating change-detection ability. Visual Cognition, 7(1–3), 397–412. Levin, D. T., Momen, N., Drivdahl, S. B., & Simons, D. J. (2000). Change blindness blindness: the metacognitive error of overestimating change-detection ability. Visual Cognition, 7(1–3), 397–412.
go back to reference Levin, D. T., & Simons, D. J. (1997). Failure to detect changes to attended objects in motion pictures. Psychonomic Bulletin & Review, 4, 501–506. Levin, D. T., & Simons, D. J. (1997). Failure to detect changes to attended objects in motion pictures. Psychonomic Bulletin & Review, 4, 501–506.
go back to reference Little, D. F., Zhang, Y. X., & Wright, B. A. (2017). Disruption of perceptual learning by a brief practice period. Current Biology, 27(33), 3699–3705.PubMed Little, D. F., Zhang, Y. X., & Wright, B. A. (2017). Disruption of perceptual learning by a brief practice period. Current Biology, 27(33), 3699–3705.PubMed
go back to reference Lu, Z., Hua, T., Huang, C., Zhou, Y., & Dosher, B. A. (2011). Visual perceptual learning. Neurobiology Learning Memory, 95(2), 145–151. Lu, Z., Hua, T., Huang, C., Zhou, Y., & Dosher, B. A. (2011). Visual perceptual learning. Neurobiology Learning Memory, 95(2), 145–151.
go back to reference Luck, S. J., & Vogel, E. (1997). The capacity of visual working memory for features and conjunctions. Nature, 390(6657), 279–281.PubMed Luck, S. J., & Vogel, E. (1997). The capacity of visual working memory for features and conjunctions. Nature, 390(6657), 279–281.PubMed
go back to reference Macmillan, N. A., & Creelman, C. D. (2005). Detection theory: a user’s guide (2nd ed.). New Jersey: Lawrence Erlbaum Associates. Macmillan, N. A., & Creelman, C. D. (2005). Detection theory: a user’s guide (2nd ed.). New Jersey: Lawrence Erlbaum Associates.
go back to reference Mitroff, S. R., Simons, D. J., & Levin, D. T. (2004). Nothing compares 2 views: change blindness can occur despite preserved access to the changed information. Perception & Psychophysics, 66(8), 1268–1281. Mitroff, S. R., Simons, D. J., & Levin, D. T. (2004). Nothing compares 2 views: change blindness can occur despite preserved access to the changed information. Perception & Psychophysics, 66(8), 1268–1281.
go back to reference Molloy, K., Moore, D. R., Sohoglu, E., & Amitay, S. (2012). Less is more: latent learning is maximized by shorter training sessions in auditory perceptual learning. PLoS One, 7(5), e36929.PubMedPubMedCentral Molloy, K., Moore, D. R., Sohoglu, E., & Amitay, S. (2012). Less is more: latent learning is maximized by shorter training sessions in auditory perceptual learning. PLoS One, 7(5), e36929.PubMedPubMedCentral
go back to reference Nieuwenstein, M. R., & Potter, M. C. (2006). Temporal limits of selection and memory encoding: a comparison of whole versus partial report in rapid serial visual presentation. Psychological Science, 17(6), 471–475.PubMed Nieuwenstein, M. R., & Potter, M. C. (2006). Temporal limits of selection and memory encoding: a comparison of whole versus partial report in rapid serial visual presentation. Psychological Science, 17(6), 471–475.PubMed
go back to reference Noë, A., Pessoa, L., & Thompson, E. (2000). Beyond the grand illusion: What change blindness really teaches us about vision. Visual Cognition, 7, 93–106. Noë, A., Pessoa, L., & Thompson, E. (2000). Beyond the grand illusion: What change blindness really teaches us about vision. Visual Cognition, 7, 93–106.
go back to reference Pavani, F., & Turatto, M. (2008). Change perception in complex auditory scenes. Perception & Psychophysics, 70(4), 619–629. Pavani, F., & Turatto, M. (2008). Change perception in complex auditory scenes. Perception & Psychophysics, 70(4), 619–629.
go back to reference Phillips, W. A., & Singer, W. (1974). Function and interaction of on and off transients in vision. I. Psychophysics. Experimental Brain Research, 19(5), 493–506.PubMed Phillips, W. A., & Singer, W. (1974). Function and interaction of on and off transients in vision. I. Psychophysics. Experimental Brain Research, 19(5), 493–506.PubMed
go back to reference Poggio, T., Fahle, M., & Edelman, S. (1992). Fast perceptual learning in visual hyperacuity. Science, 256(5059), 1018–1021.PubMed Poggio, T., Fahle, M., & Edelman, S. (1992). Fast perceptual learning in visual hyperacuity. Science, 256(5059), 1018–1021.PubMed
go back to reference Puschmann, S., Sandmann, P., Ahrens, J., Thorne, J., Weerda, R., Klump, G., et al. (2013). Electrophysiological correlates of auditory change detection and change deafness in complex auditory scenes. NeuroImage, 75, 155–164.PubMed Puschmann, S., Sandmann, P., Ahrens, J., Thorne, J., Weerda, R., Klump, G., et al. (2013). Electrophysiological correlates of auditory change detection and change deafness in complex auditory scenes. NeuroImage, 75, 155–164.PubMed
go back to reference Recanzone, G. H., Merzenich, M. M., & Jenkins, W. M. (1992a). Frequency discrimination training engaging a restricted skin surface results in an emergence of a cutaneous response zone in cortical area 3a. Journal of Neurophysiology, 67, 1057–1070.PubMed Recanzone, G. H., Merzenich, M. M., & Jenkins, W. M. (1992a). Frequency discrimination training engaging a restricted skin surface results in an emergence of a cutaneous response zone in cortical area 3a. Journal of Neurophysiology, 67, 1057–1070.PubMed
go back to reference Recanzone, G. H., Merzenich, M. M., Jenkins, W. M., Grajski, K. A., & Dinse, H. R. (1992b). Topographic reorganization of the hand representation in cortical area 3b of owl monkeys trained in a frequency-discrimination task. Journal of Neurophysiology, 67, 1031–1056.PubMed Recanzone, G. H., Merzenich, M. M., Jenkins, W. M., Grajski, K. A., & Dinse, H. R. (1992b). Topographic reorganization of the hand representation in cortical area 3b of owl monkeys trained in a frequency-discrimination task. Journal of Neurophysiology, 67, 1031–1056.PubMed
go back to reference Recanzone, G. H., Schreiner, C. E., & Merzenich, M. M. (1993). Plasticity in the frequency representation of primary auditory cortex following discrimination training in adult owl monkeys. Journal of Neuroscience, 13, 87–103.PubMed Recanzone, G. H., Schreiner, C. E., & Merzenich, M. M. (1993). Plasticity in the frequency representation of primary auditory cortex following discrimination training in adult owl monkeys. Journal of Neuroscience, 13, 87–103.PubMed
go back to reference Rensink, R. A., O’Regan, J. K., & Clark, J. J. (1997). To see or not to see: the need for attention to perceive changes in scenes. Psychological Science, 8(5), 368–373. Rensink, R. A., O’Regan, J. K., & Clark, J. J. (1997). To see or not to see: the need for attention to perceive changes in scenes. Psychological Science, 8(5), 368–373.
go back to reference Sagi, D. (2011). Perceptual learning in vision research. Vision Research, 51(13), 1552–1566.PubMed Sagi, D. (2011). Perceptual learning in vision research. Vision Research, 51(13), 1552–1566.PubMed
go back to reference Schwab, E. C., Nusbaum, H. C., & Pisoni, D. B. (1985). Some effects of training on the perception of synthetic speech. Human Factors, 27(4), 395–408.PubMedPubMedCentral Schwab, E. C., Nusbaum, H. C., & Pisoni, D. B. (1985). Some effects of training on the perception of synthetic speech. Human Factors, 27(4), 395–408.PubMedPubMedCentral
go back to reference Simons, D. J. (1996). In sight, out of mind: When object representations fail. Psychological Science, 7(5), 301–305. Simons, D. J. (1996). In sight, out of mind: When object representations fail. Psychological Science, 7(5), 301–305.
go back to reference Simons, D. J., & Rensink, R. A. (2005). Change blindness: past, present, and future. Trends in Cognitive Sciences, 9(1), 16–20.PubMed Simons, D. J., & Rensink, R. A. (2005). Change blindness: past, present, and future. Trends in Cognitive Sciences, 9(1), 16–20.PubMed
go back to reference Snyder, J. S., & Gregg, M. K. (2011). Memory for sound, with an ear toward hearing in complex auditory scenes. Attention, Perception, & Psychophysics, 73, 1993–2007. Snyder, J. S., & Gregg, M. K. (2011). Memory for sound, with an ear toward hearing in complex auditory scenes. Attention, Perception, & Psychophysics, 73, 1993–2007.
go back to reference Snyder, J. S., Gregg, M. K., Weintraub, D. M., & Alain, C. (2012). Attention, awareness, and the perception of auditory scenes. Frontiers in Psychology, 3, 1–17. Snyder, J. S., Gregg, M. K., Weintraub, D. M., & Alain, C. (2012). Attention, awareness, and the perception of auditory scenes. Frontiers in Psychology, 3, 1–17.
go back to reference Snyder, J. S., & Weintraub, D. M. (2013). Loss and persistence of implicit memory for sound: evidence from auditory stream segregation context effects. Attention Perception Psychophysics, 59, 81–86. Snyder, J. S., & Weintraub, D. M. (2013). Loss and persistence of implicit memory for sound: evidence from auditory stream segregation context effects. Attention Perception Psychophysics, 59, 81–86.
go back to reference Stelmach, L. B., Bourassa, M., & DiLollo, V. (1984). Detection of stimulus change: the hypothetical roles of visual transient responses. Perception & Psychophysics, 35(3), 245–255. Stelmach, L. B., Bourassa, M., & DiLollo, V. (1984). Detection of stimulus change: the hypothetical roles of visual transient responses. Perception & Psychophysics, 35(3), 245–255.
go back to reference Tulving, E., & Thomson, D. M. (1973). Encoding specificity and retrieval processes in episodic memory. Psychological Review, 80, 352–373. Tulving, E., & Thomson, D. M. (1973). Encoding specificity and retrieval processes in episodic memory. Psychological Review, 80, 352–373.
go back to reference Vanden Bosch der Nederlanden, C. M., Snyder, J. S., & Hannon, E. E. (2016). Children use object-level category knowledge to detect changes in complex auditory scenes. Developmental Psychology, 52(11), 1867–1877.PubMed Vanden Bosch der Nederlanden, C. M., Snyder, J. S., & Hannon, E. E. (2016). Children use object-level category knowledge to detect changes in complex auditory scenes. Developmental Psychology, 52(11), 1867–1877.PubMed
go back to reference Vitevitch, M. S. (2003). Change deafness: The inability to detect changes between two voices. Journal of Experimental Psychology: Human Perception and Performance, 29(2), 333–342.PubMed Vitevitch, M. S. (2003). Change deafness: The inability to detect changes between two voices. Journal of Experimental Psychology: Human Perception and Performance, 29(2), 333–342.PubMed
go back to reference Wenger, M. J., & Rasche, C. (2006). Perceptual learning in contrast detection: Presence and cost of shifts in response criteria. Psychonomic Bulletin & Review, 13(4), 656–661. Wenger, M. J., & Rasche, C. (2006). Perceptual learning in contrast detection: Presence and cost of shifts in response criteria. Psychonomic Bulletin & Review, 13(4), 656–661.
go back to reference Wenger, M. J., Copeland, A. M., Bittner, J. L., & Thomas, R. D. (2008). Evidence for criterion shifts in visual perceptual learning: Data and Implications. Perception & Psychophysics, 70(7), 1248–1273. Wenger, M. J., Copeland, A. M., Bittner, J. L., & Thomas, R. D. (2008). Evidence for criterion shifts in visual perceptual learning: Data and Implications. Perception & Psychophysics, 70(7), 1248–1273.
go back to reference Werner, S., & Thies, B. (2000). Is “Change Blindness” attenuated by domain-specific expertise? An expert-novices comparison of change detection in football images. Visual Cognition, 7(1–3), 163–173. Werner, S., & Thies, B. (2000). Is “Change Blindness” attenuated by domain-specific expertise? An expert-novices comparison of change detection in football images. Visual Cognition, 7(1–3), 163–173.
go back to reference Wright, B., & Fitzgerald, M. B. (2001). Different patterns of human discrimination learning for two interaural cues to sound source localization. Proceedings of the National Academy of Sciences, 98(21), 12307–12312. Wright, B., & Fitzgerald, M. B. (2001). Different patterns of human discrimination learning for two interaural cues to sound source localization. Proceedings of the National Academy of Sciences, 98(21), 12307–12312.
go back to reference Wright, B. A., & Sabin, A. (2007). Perceptual learning: how much daily training is enough? Experimental Brain Research, 180(4), 727–736.PubMed Wright, B. A., & Sabin, A. (2007). Perceptual learning: how much daily training is enough? Experimental Brain Research, 180(4), 727–736.PubMed
go back to reference Wright, B. A., & Zhang, Y. (2009a). A review of the generalization of auditory learning. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 364, 301–311.PubMed Wright, B. A., & Zhang, Y. (2009a). A review of the generalization of auditory learning. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 364, 301–311.PubMed
go back to reference Wright, B. A., & Zhang, Y. (2009b). Insights into human auditory processing gained from perceptual learning. In M. S. Gazzaniga (Ed.), The cognitive neurosciences (Vol. IV, pp. 353–366). Cambridge: The MIT Press. Wright, B. A., & Zhang, Y. (2009b). Insights into human auditory processing gained from perceptual learning. In M. S. Gazzaniga (Ed.), The cognitive neurosciences (Vol. IV, pp. 353–366). Cambridge: The MIT Press.
go back to reference Zhang, W., & Luck, S. J. (2008). Discrete fixed-resolution representations in visual working memory. Nature, 452, 233–235. Zhang, W., & Luck, S. J. (2008). Discrete fixed-resolution representations in visual working memory. Nature, 452, 233–235.
Metagegevens
Titel
Change deafness can be reduced, but not eliminated, using brief training interventions
Auteurs
Vanessa C. Irsik
Joel S. Snyder
Publicatiedatum
06-09-2019
Uitgeverij
Springer Berlin Heidelberg
Gepubliceerd in
Psychological Research / Uitgave 1/2021
Print ISSN: 0340-0727
Elektronisch ISSN: 1430-2772
DOI
https://doi.org/10.1007/s00426-019-01239-6

Andere artikelen Uitgave 1/2021

Psychological Research 1/2021 Naar de uitgave