References
- 1Banbury, S. P., Macken, W. J., Tremblay, S., & Jones, D. M. (2001). Auditory distraction and short-term memory: Phenomena and practical implications. Human Factors, 43, 12–29. DOI: 10.1518/001872001775992462
- 2Beaman, C. P. (2005). Auditory distraction from low-intensity noise: A review of the consequences for learning and workplace environments. Applied Cognitive Psychology, 19, 1041–1064. DOI: 10.1002/acp.1134
- 3Bell, R., Dentale, S., Buchner, A., & Mayr, S. (2010). ERP correlates of the irrelevant sound effect. Psychophysiology, 47, 1182–1191. DOI: 10.1111/j.1469-8986.2010.01029.x
- 4Bell, R., Röer, J. P., Lang, A.-G., & Buchner, A. (2019). Distraction by steady-state sounds: Evidence for a graded attentional model of auditory distraction. Journal of Experimental Psychology: Human Perception and Performance, 45, 500–512. DOI: 10.1037/xhp0000623
- 5Bell, R., Röer, J. P., Lang, A.-G., & Buchner, A. (in press). Reassessing the token set size effect on serial recall: Implications for theories of auditory distraction. Journal of Experimental Psychology: Learning, Memory, and Cognition.
- 6Campbell, T., Beaman, C. P., & Berry, D. C. (2002). Auditory memory and the irrelevant sound effect: Further evidence for changing-state disruption. Memory, 10, 199–214. DOI: 10.1080/09658210143000335
- 7Dreber, A., Pfeiffer, T., Almenberg, J., Isaksson, S., Wilson, B., Chen, Y., Nosek, B. A., & Johannesson, M. (2015). Using prediction markets to estimate the reproducibility of scientific research. Proceedings of the National Academy of Sciences, 112, 15343–15347. DOI: 10.1073/pnas.1516179112
- 8Ellermeier, W., & Zimmer, K. (2014). The psychoacoustics of the irrelevant sound effect. Acoustical Science and Technology, 35, 10–16. DOI: 10.1250/ast.35.10
- 9Faul, F., Erdfelder, E., Lang, A.-G., & Buchner, A. (2007). G*Power3: A flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behavior Research Methods, 39, 175–191. DOI: 10.3758/BF03193146
- 10Furnham, A., & Strbac, L. (2002). Music is as distracting as noise: The differential distraction of background music and noise on the cognitive test performance of introverts and extraverts. Ergonomics, 45, 203–217. DOI: 10.1080/00140130210121932
- 11Hagger, M. S., Chatzisarantis, N. L. D., Alberts, H., Anggono, C. O., Batailler, C., Birt, A. R., Brand, R., Brandt, M. J., Brewer, G., Bruyneel, S., Calvillo, D. P., Campbell, W. K., Cannon, P. R., Carlucci, M., Carruth, N. P., Cheung, T., Crowell, A., De Ridder, D. T. D., Dewitte, S., Elson, M., Evans, J. R., Fay, B. A., Fennis, B. M., Finley, A., Francis, Z., Heise, E., Hoemann, H., Inzlicht, M., Koole, S. L., Koppel, L., Kroese, F., Lange, F., Lau, K., Lynch, B. P., Martijn, C., Merckelbach, H., Mills, N. V., Michirev, A., Miyake, A., Mosser, A. E., Muise, M., Muller, D., Muzi, M., Nalis, D., Nurwanti, R., Otgaar, H., Philipp, M. C., Primoceri, P., Rentzsch, K., Ringos, L., Schlinkert, C., Schmeichel, B. J., Schoch, S. F., Schrama, M., Schutz, A., Stamos, A., Tinghog, G., Ullrich, J., vanDellen, M., Wimbarti, S., Wolff, W., Yusainy, C., Zerhouni, O., & Zwienenberg, M. (2016). A multilab preregistered replication of the ego-depletion effect. Perspectives on Psychological Science, 11, 546–573. DOI: 10.1177/1745691616652873
- 12Hughes, R. W., Vachon, F., & Jones, D. M. (2005). Auditory attentional capture during serial recall: Violations at encoding of an algorithm-based neural model? Journal of Experimental Psychology: Learning, Memory, and Cognition, 31, 736–749. DOI: 10.1037/0278-7393.31.4.736
- 13Hughes, R. W., Vachon, F., & Jones, D. M. (2007). Disruption of short-term memory by changing and deviant sounds: Support for a duplex-mechanism account of auditory distraction. Journal of Experimental Psychology: Learning, Memory, and Cognition, 33, 1050–1061. DOI: 10.1037/0278-7393.33.6.1050
- 14JASP Team. (2018). JASP (Version 0.9). [Computer software].
- 15Jones, D. M., Madden, C., & Miles, C. (1992). Privileged access by irrelevant speech to short-term memory: The role of changing state. Quarterly Journal of Experimental Psychology: Human Experimental Psychology, 44, 645–669. DOI: 10.1080/14640749208401304
- 16Körner, U., Röer, J. P., Buchner, A., & Bell, R. (2017). Working memory capacity is equally unrelated to auditory distraction by changing-state and deviant sounds. Journal of Memory and Language, 96, 122–137. DOI: 10.1016/j.jml.2017.05.005
- 17Körner, U., Röer, J. P., Buchner, A., & Bell, R. (2019). Time of presentation affects auditory distraction: Changing-state and deviant sounds disrupt similar working memory processes. Quarterly Journal of Experimental Psychology, 72, 457–471. DOI: 10.1177/1747021818758239
- 18Lange, E. (2005). Disruption of attention by irrelevant stimuli in serial recall. Journal of Memory and Language, 53, 513–531. DOI: 10.1016/j.jml.2005.07.002
- 19Marsh, J. E., Vachon, F., & Sörqvist, P. (2017). Increased distractibility in schizotypy: Independent of individual differences in working memory capacity? Quarterly Journal of Experimental Psychology, 70, 565–578. DOI: 10.1080/17470218.2016.1172094
- 20Miles, C., Jones, D. M., & Madden, C. (1991). Locus of the irrelevant speech effect in short-term memory. Journal of Experimental Psychology: Learning, Memory, and Cognition, 17, 578–584. DOI: 10.1037/0278-7393.17.3.578
- 21Oberauer, K., Lewandowsky, S., Awh, E., Brown, G. D. A., Conway, A. R. A., Cowan, N., Donkin, C., Farrell, S., Hitch, G. J., Hurlstone, M. J., Ma, W. J., Morey, C. C., Nee, D. E., Schweppe, J., Vergauwe, E., & Ward, G. (2018). Benchmarks for Models of Short Term and Working Memory. Psychological Bulletin, 144, 885–958. DOI: 10.1037/bul0000153
- 22Open Science Collaboration. (2015). Estimating the reproducibility of psychological science. Science, 349,
aac4716 . DOI: 10.1126/science.aac4716 - 23Pacheco-Unguetti, A. P., Gelabert, J. M., & Parmentier, F. B. R. (2016). Can auditory deviant stimuli temporarily suspend cognitive processing? Evidence from patients with anxiety. The Quarterly Journal of Experimental Psychology, 69, 150–160. DOI: 10.1080/17470218.2015.1031145
- 24Röer, J. P., Bell, R., & Buchner, A. (2014a). Evidence for habituation of the irrelevant sound effect on serial recall. Memory & Cognition, 42, 609–621. DOI: 10.3758/s13421-013-0381-y
- 25Röer, J. P., Bell, R., & Buchner, A. (2014b). What determines auditory distraction? On the roles of local auditory changes and expectation violations. PLoS one, 9,
e84166 . DOI: 10.1371/journal.pone.0084166 - 26Röer, J. P., Bell, R., Marsh, J. E., & Buchner, A. (2015). Age equivalence in auditory distraction by changing and deviant speech sounds. Psychology and Aging, 30, 849–855. DOI: 10.1037/pag0000055
- 27Röer, J. P., Körner, U., Buchner, A., & Bell, R. (2018). Equivalent auditory distraction in children and adults. Journal of Experimental Child Psychology, 172, 41–58. DOI: 10.1016/j.jecp.2018.02.005
- 28Ruch, W. (1999). Die revidierte Fassung des Eysenck Personality Questionnaire und die Konstruktion des deutschen EPQ-R bzw. EPQ-RK [The revised version of the Eysenck Personality Questionnaire and the construction of the German EPQ-R and EPQ-RK]. Zeitschrift für Differentielle und Diagnostische Psychologie, 20, 1–24. DOI: 10.1024//0170-1789.20.1.1
- 29Schlittmeier, S. J., Hellbrück, J., & Klatte, M. (2008). Does irrelevant music cause an irrelevant sound effect for auditory items? European Journal of Cognitive Psychology, 20, 252–271. DOI: 10.1080/09541440701427838
- 30Sörqvist, P. (2010). High working memory capacity attenuates the deviation effect but not the changing-state effect: Further support for the duplex-mechanism account of auditory distraction. Memory & Cognition, 38, 651–658. DOI: 10.3758/MC.38.5.651
- 31Vachon, F., Labonté, K., & Marsh, J. E. (2017). Attentional capture by deviant sounds: A noncontingent form of auditory distraction? Journal of Experimental Psychology: Learning, Memory, and Cognition, 43, 622–634. DOI: 10.1037/xlm0000330
