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The Influence of Active Removal from Working Memory on Serial Dependence Cover

The Influence of Active Removal from Working Memory on Serial Dependence

Open Access
|May 2022

References

  1. Bae, G.-Y., & Luck, S. J. (2019). Reactivation of previous experiences in a working memory task. Psychological science, 30(4), 587595. DOI: 10.1177/0956797619830398
  2. Barbosa, J., Stein, H., Martinez, R. L., Galan-Gadea, A., Li, S., Dalmau, J., Adam, K. C., Valls-Solé, J., Constantinidis, C., & Compte, A. (2020). Interplay between persistent activity and activity-silent dynamics in the prefrontal cortex underlies serial biases in working memory. Nature neuroscience, 23(8), 10161024. DOI: 10.1038/s41593-020-0644-4
  3. Bliss, D. P., Sun, J. J., & D’Esposito, M. (2017). Serial dependence is absent at the time of perception but increases in visual working memory. Scientific reports, 7(1), 113. DOI: 10.1038/s41598-017-15199-7
  4. Braver, T. S. (2012). The variable nature of cognitive control: a dual mechanisms framework. Trends in cognitive sciences, 16(2), 106113. DOI: 10.1016/j.tics.2011.12.010
  5. Burgess, G. C., & Braver, T. S. (2010). Neural mechanisms of interference control in working memory: effects of interference expectancy and fluid intelligence. PloS one, 5(9), e12861. DOI: 10.1371/journal.pone.0012861
  6. Chatham, C. H., & Badre, D. (2013). Working memory management and predicted utility. Frontiers in Behavioral Neuroscience, 7, 83. DOI: 10.3389/fnbeh.2013.00083
  7. Clifford, C. W., Wenderoth, P., & Spehar, B. (2000). A functional angle on some after-effects in cortical vision. Proceedings of the Royal Society of London. Series B: Biological Sciences, 267(1454), 17051710. DOI: 10.1098/rspb.2000.1198
  8. Clifford, C. W., Wyatt, A. M., Arnold, D. H., Smith, S. T., & Wenderoth, P. (2001). Orthogonal adaptation improves orientation discrimination. Vision research, 41(2), 151159. DOI: 10.1016/S0042-6989(00)00248-0
  9. D’Esposito, M., Postle, B. R., Jonides, J., & Smith, E. E. (1999). The neural substrate and temporal dynamics of interference effects in working memory as revealed by event-related functional MRI. Proceedings of the National Academy of Sciences, 96(13), 75147519. DOI: 10.1073/pnas.96.13.7514
  10. Feredoes, E., & Postle, B. R. (2010). Prefrontal control of familiarity and recollection in working memory. Journal of Cognitive Neuroscience, 22(2), 323330. DOI: 10.1162/jocn.2009.21252
  11. Feredoes, E., Tononi, G., & Postle, B. R. (2006). Direct evidence for a prefrontal contribution to the control of proactive interference in verbal working memory. Proceedings of the National Academy of Sciences, 103(51), 1953019534. DOI: 10.1073/pnas.0604509103
  12. Fischer, J., & Whitney, D. (2014). Serial dependence in visual perception. Nature neuroscience, 17(5), 738743. DOI: 10.1038/nn.3689
  13. Fritsche, M., Spaak, E., & de Lange, F. P. (2020). A Bayesian and efficient observer model explains concurrent attractive and repulsive history biases in visual perception. Elife, 9. DOI: 10.7554/eLife.55389.sa2
  14. Fulvio, J. M., & Postle, B. R. (2020). Cognitive Control, Not Time, Determines the Status of Items in Working Memory. Journal of Cognition, 3(1). DOI: 10.5334/joc.98
  15. Kleinman, K., & Huang, S. S. (2016). Calculating power by bootstrap, with an application to cluster-randomized trials. eGEMs, 4(1). DOI: 10.13063/2327-9214.1202
  16. LaRocque, J. J., Lewis-Peacock, J. A., Drysdale, A. T., Oberauer, K., & Postle, B. R. (2013). Decoding attended information in short-term memory: an EEG study. Journal of Cognitive Neuroscience, 25(1), 127142. DOI: 10.1162/jocn_a_00305
  17. Lepsien, J., & Nobre, A. C. (2006). Cognitive control of attention in the human brain: Insights from orienting attention to mental representations. Brain research, 1105(1), 2031. DOI: 10.1016/j.brainres.2006.03.033
  18. Lewis-Peacock, J. A., Kessler, Y., & Oberauer, K. (2018). The removal of information from working memory. Annals of the New York Academy of Sciences, 1424(1), 3344. DOI: 10.1111/nyas.13714
  19. Lewis-Peacock, J. A., & Postle, B. R. (2012). Decoding the internal focus of attention. Neuropsychologia, 50(4), 470478. DOI: 10.1016/j.neuropsychologia.2011.11.006
  20. Lorenc, E. S., Vandenbroucke, A. R., Nee, D. E., de Lange, F. P., & D’Esposito, M. (2020). Dissociable neural mechanisms underlie currently-relevant, future-relevant, and discarded working memory representations. Scientific reports, 10(1), 117. DOI: 10.1038/s41598-020-67634-x
  21. Ma, W. J., Husain, M., & Bays, P. M. (2014). Changing concepts of working memory. Nature neuroscience, 17(3), 347. DOI: 10.1038/nn.3655
  22. Monsell, S. (1978). Recency, immediate recognition memory, and reaction time. Cognitive Psychology, 10(4), 465501. DOI: 10.1016/0010-0285(78)90008-7
  23. Oberauer, K., & Lin, H.-Y. (2017). An interference model of visual working memory. Psychological review, 124(1), 21. DOI: 10.1037/rev0000044
  24. Rose, N. S., LaRocque, J. J., Riggall, A. C., Gosseries, O., Starrett, M. J., Meyering, E. E., & Postle, B. R. (2016). Reactivation of latent working memories with transcranial magnetic stimulation. Science, 354(6316), 11361139. DOI: 10.1126/science.aah7011
  25. Sahan, M. I., Sheldon, A. D., & Postle, B. R. (2020). The Neural Consequences of Attentional Prioritization of Internal Representations in Visual Working Memory. Journal of Cognitive Neuroscience, 32(5), 917944. DOI: 10.1162/jocn_a_01517
  26. Samaha, J., Switzky, M., & Postle, B. R. (2019). Confidence boosts serial dependence in orientation estimation. Journal of Vision, 19(4), 2525. DOI: 10.1167/19.4.25
  27. Sprague, T. C., Ester, E. F., & Serences, J. T. (2016). Restoring latent visual working memory representations in human cortex. Neuron, 91(3), 694707. DOI: 10.1016/j.neuron.2016.07.006
  28. van Loon, A. M., Olmos-Solis, K., Fahrenfort, J. J., & Olivers, C. N. (2018). Current and future goals are represented in opposite patterns in object-selective cortex. ELife, 7, e38677. DOI: 10.7554/eLife.38677
  29. Wan, Q., Cai, Y., Samaha, J., & Postle, B. R. (2020). Tracking stimulus representation across a 2-back visual working memory task. Royal Society Open Science, 7(8), 190228. DOI: 10.1098/rsos.190228
  30. Woods, A. T., Velasco, C., Levitan, C. A., Wan, X., & Spence, C. (2015). Conducting perception research over the internet: a tutorial review. PeerJ, 3, e1058. DOI: 10.7717/peerj.1058
  31. Yu, Q., Teng, C., & Postle, B. R. (2020). Different states of priority recruit different neural representations in visual working memory. PLoS biology, 18(6), e3000769. DOI: 10.1371/journal.pbio.3000769
DOI: https://doi.org/10.5334/joc.222 | Journal eISSN: 2514-4820
Language: English
Submitted on: Sep 23, 2020
Accepted on: Apr 25, 2022
Published on: May 24, 2022
Published by: Ubiquity Press
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2022 Jiangang Shan, Bradley R. Postle, published by Ubiquity Press
This work is licensed under the Creative Commons Attribution 4.0 License.