Adaptations and References
Sections of this chapter were adapted from the following:
- Lachs, L. (2024). Multi-modal perception. In R. Biswas-Diener & E. Diener (Eds), Noba textbook series: Psychology. Champaign, IL: DEF publishers. Retrieved from http://noba.to/cezw4qyn
- Oxenham, A. J. (2024). Hearing. In R. Biswas-Diener & E. Diener (Eds), Noba textbook series: Psychology. Champaign, IL: DEF publishers. Retrieved from http://noba.to/jry3cu78
- Privitera, A. J. (2024). Sensation and perception. In R. Biswas-Diener & E. Diener (Eds), Noba textbook series: Psychology. Champaign, IL: DEF publishers. Retrieved from http://noba.to/xgk3ajhy
References:
- Bernstein, L. R., & Trahiotis, C. (2002). Enhancing sensitivity to interaural delays at high frequencies by using “transposed stimuli.” Journal of the Acoustical Society of America, 112, 1026–1036.
- Botvinick, M., & Cohen, J. (1998). Rubber hands /`feel/’ touch that eyes see. [10.1038/35784]. Nature, 391(6669), 756–756.
- Bregman, A. S. (1990). Auditory scene analysis: The perceptual organization of sound. Cambridge, MA: MIT Press.
- Bukach, C. M., Gauthier, I., Tarr, M. J., Kadlec, H., Barth, S., Ryan, E., … & Bub, D. N. (2012). Does acquisition of Greeble expertise in prosopagnosia rule out a domain-general deficit?. Neuropsychologia, 50(2), 289-304.
- Calvert, G. A. (2001). Crossmodal processing in the human brain: Insights from functional neuroimaging studies. Cerebral Cortex, 11, 1110–1123.
- Calvert, G. A., Hansen, P. C., Iversen, S. D., & Brammer, M. J. (2001). Detection of audio-visual integration sites in humans by application of electrophysiological criteria to the bold effect. NeuroImage, 14(2), 427–438. doi: 10.1006/nimg.2001.0812
- Deutsch, D. (1975). Two‐channel listening to musical scales. The Journal of the Acoustical Society of America, 57(5), 1156-1160.
- Deutsch, D. (1979). Binaural integration of melodic patterns. Perception & Psychophysics, 25, 399–405.
- Deutsch, D. (2019). Musical illusions and phantom words: How music and speech unlock mysteries of the brain. Oxford University Press.
- Gauthier, I., Tarr, M. J., Anderson, A. W., Skudlarski, P., & Gore, J. C. (1999). Activation of the middle fusiform ‘face area’ increases with expertise in recognizing novel objects. Nature neuroscience, 2(6), 568-573.
- Goodale, M. A., & Milner, A. D. (1992). Separate visual pathways for perception and action. Trends in Neurosciences, 15(1), 20-25.
- Graham, R. (2017). Music to Our Eyes: Assessing the Role of Experience for Multisensory Integration in Music Perception. Southern Illinois University at Carbondale.
- Hering, E. (1920). Grundzüge der Lehre vom Lichtsinn. J.Springer.
- Hubel, D. H., & Wiesel, T. N. (1962). Receptive fields, binocular interaction and functional architecture in the cat’s visual cortex. The Journal of Physiology,160(1), 106.
- Ison, M. J., Quiroga, R. Q., & Fried, I. (2015). Rapid encoding of new memories by individual neurons in the human brain. Neuron, 87(1), 220-230.
- Klump, R. G., & Eady, H. R. (1956). Some measurements of interaural time difference thresholds. Journal of the Acoustical Society of America, 28, 859–860.
- Macpherson, E. A., & Middlebrooks, J. C. (2002). Listener weighting of cues for lateral angle: The duplex theory of sound localization revisited. Journal of the Acoustical Society of America, 111, 2219–2236.
- McGurk, H., & MacDonald, J. (1976). Hearing lips and seeing voices. Nature, 264, 746–748.
- Merzenich, M. M., Knight, P. L., & Roth, G. L. (1975). Representation of cochlea within primary auditory cortex in the cat. Journal of Neurophysiology, 38(2), 231-249.
- Rayleigh, L. (1907). XII. On our perception of sound direction. The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, 13(74), 214-232.
- Rock, I., & Palmer, S. (1990). The legacy of Gestalt psychology. Scientific American, 263(6), 84-91.
- Romani, G. L., Williamson, S. J., & Kaufman, L. (1982). Tonotopic organization of the human auditory cortex. Science, 216(4552), 1339-1340.
- Schutz, M., & Lipscomb, S. (2007). Hearing gestures, seeing music: Vision influences perceived tone duration. Perception, 36(6), 888-897.
- Sekuler, R., Sekuler, A. B., & Lau, R. (1997). Sound alters visual motion perception. [10.1038/385308a0]. Nature, 385(6614), 308–308.
- Smith, Z. M., Delgutte, B., & Oxenham, A. J. (2002). Chimaeric sounds reveal dichotomies in auditory perception. Nature, 416, 87–90.
- Spielman, R. M., Jenkins, W. J. & Lovett, M. (2020). Psychology: 2e. Houston, Texas: OpenStax, Rice University
- Stein, B. E., & Meredith, M. A. (1993). The merging of the senses. Cambridge, MA: The MIT Press.
- Sumby, W. H., & Pollack, I. (1954). Visual contribution of speech intelligibility in noise. Journal of the Acoustical Society of America, 26, 212–215.
- Svaetichin, G. (1955). Spectral response curves from single cones. Acta physiologica Scandinavica. Supplementum, 39(134), 17-46.
- Välimäki, V., & Takala, T. (1996). Virtual musical instruments—natural sound using physical models. Organised Sound, 1(2), 75-86.
- Vasconcelos, N., Pantoja, J., Belchior, H., Caixeta, F. V., Faber, J., Freire, M. A. M., . . . Ribeiro, S. (2011). Cross-modal responses in the primary visual cortex encode complex objects and correlate with tactile discrimination. Proceedings of the National Academy of Sciences, 108(37), 15408–15413. doi: 10.1073/pnas.1102780108
- Von Helmholtz, H. (1867). Handbuch der physiologischen Optik (Vol. 9). Voss.
- Walker, K. M., Bizley, J. K., King, A. J., & Schnupp, J. W. (2011). Multiplexed and robust representations of sound features in auditory cortex. Journal of Neuroscience, 31, 14565–14576.
- Ward, J., Huckstep, B., & Tsakanikos, E. (2006). Sound-colour synaesthesia: To what extent does it use cross-modal mechanisms common to us all?. Cortex, 42(2), 264-280.
- Young, T. (1802). The Bakerian lecture: On the theory of light and colours. Philosophical transactions of the Royal Society of London, 12-48
- Zahorik, P., & Wightman, F. L. (2001). Loudness constancy with varying sound source distance. Nature Neuroscience, 4, 78–83.