Go to the article page in English / Pojdi na angleško stran članka
Obojestranska prednost v vidnem delovnem spominu je opazna šele ob preseženi spominski kapaciteti posamezne hemisfere
Anka Slana Ozimič in Grega Repovš
Polno besedilo (pdf) | Ogledi: 223 | Napisan v slovenščini. | Objavljeno: 12. november 2019
https://doi.org/10.20419/2019.28.503 | Citati: CrossRef (0)
Povzetek: Temeljno raziskovalno vprašanje na področju preučevanja vidnega delovnega spomina je, kateri mehanizmi vzdrževanja vidnih informacij so podlaga za njegovo omejeno kapaciteto. Študije kažejo na pomembno vlogo posteriornih področij možganov, ki omogočajo oblikovanje vidnih reprezentacij na podlagi kontralateralne organiziranosti vidnega sistema. Ta omogoča, da si posamezniki zapomnijo več informacij, kadar so te prikazane na obeh polovicah vidnega polja in jih posledično procesirata obe hemisferi. Gre za pojav, ki je poznan kot obojestranska prednost. Na podlagi dosedanjih spoznanj o obojestranski prednosti pri hranjenju vidnih informacij je bil cilj naše raziskave preveriti, na kateri stopnji obremenjenosti vidnega delovnega spomina pride do obojestranske prednosti in ali lahko udeleženci pri obojestranskem prikazu informacij popolnoma izkoristijo skupno spominsko kapaciteto leve in desne hemisfere. V eksperimentu je sodelovalo 18 študentov (13 žensk), starih med 19 in 41 let, ki so izvedli nalogo prepoznave sprememb, pri kateri so morali prepoznati spremembo v orientaciji objektov, prikazanih na levi, desni ali na obeh straneh vidnega polja. Rezultati so pokazali, da so si udeleženci zapomnili več vidnih informacij in podajali hitrejše odgovore, kadar so bili objekti razporejeni preko obeh polovic vidnega polja, kar je skladno s predpostavko, da pri obojestranskem prikazu objektov izkoriščamo kapaciteto obeh hemisfer. V nadaljevanju so rezultati pokazali, da je obojestranska prednost opazna šele takrat, ko obremenitev vidnega delovnega spomina preseže kapaciteto posamezne hemisfere. Kljub pomembni obojestranski prednosti le-ta udeležencem ne omogoča, da dosežejo skupno kapaciteto obeh hemisfer, kar nakazuje, da kapaciteta vidnega delovnega spomina ni omejena le s sposobnostjo oblikovanja reprezentacij, temveč da jo opredeljujejo omejitve dodatnega kognitivnega sistema.
Ključne besede: vidni delovni spomin, vidne reprezentacije, vzdrževanje, kapaciteta, obojestranska prednost
Citiraj:
Slana Ozimič, A. in Repovš, G. (2019). Obojestranska prednost v vidnem delovnem spominu je opazna šele ob preseženi spominski kapaciteti posamezne hemisfere [Bilateral advantage in visual working memory is observed when individual hemisphere’s capacity is exceeded]. Psihološka obzorja, 28, 110–122. https://doi.org/10.20419/2019.28.503
Seznam literature v članku
Alvarez, G. A. in Cavanagh, P. (2005). Independent resources for attentional tracking in the left and right visual hemifields. Psychological Science, 16(8), 637–643. CrossRef
Baddeley, A. (1996a). The fractionation of working memory. Proceedings of the National Academy of Sciences of the United States of America, 93(24), 13468–13472. CrossRef
Baddeley, A. (1996b). Exploring the central executive. Quarterly Journal of Experimental Psychology, 49A(1), 5–28. CrossRef
Baddeley, A. (2000). The episodic buffer: A new component of working memory? Trends in Cognitive Sciences, 4(11), 417–423. CrossRef
Baddeley, A. D. in Hitch, G. J. (1974). Working memory. V G. A. Bower (ur.), Recent advances in learning and motivation (Vol. 8, str. 47–90). New York, NY, ZDA: Academic Press. CrossRef
Baguley, T. (2012). Calculating and graphing within-subject confidence intervals for ANOVA. Behavior Research Methods, 44(1), 158–175. CrossRef
Braver, T. S. in West, R. (2007). Working memory, executive control and aging. V F. I. M. Craik in T. A. Salthouse (ur.), The handbook of aging and cognition (str. 311–372). New York, NY, ZDA: Psychology Press.
Bublak, P., Müller, U., Grön, G., Reuter, M. in Cramon, von, D. Y. (2002). Manipulation of working memory information is impaired in Parkinson's disease and related to working memory capacity. Neuropsychology, 16(4), 577–590. CrossRef
Bullier, J. (2004). Communications between cortical areas of the visual system. V L. M. Chalupa in J. S. Werner (ur.), The visual neurosciences (str. 522–540). Cambridge, MA: The visual neurosciences.
Chakravarthi, R. in Cavanagh, P. (2009). Bilateral field advantage in visual crowding. Vision Research, 49(13), 1638–1646. CrossRef
Cowan, N. (2005). Working memory capacity. Hove, East Sussex, Združeno kraljestvo: Psychology Press.
Cowan, N. (2010). The magical mystery four: How is working memory capacity limited, and why? Current Directions in Psychological Science, 19(1), 51–57. CrossRef
Delvenne, J.-F. (2005). The capacity of visual short-term memory within and between hemifields. Cognition, 96(3), B79–B88. CrossRef
Delvenne, J.-F. (2012). Visual short-term memory and the bilateral field advantage. V G. Kalivas in S. F. Petralia (ur.), Short-term memory: New research. Nova Science.
Eriksson, J., Vogel, E. K., Lansner, A., Bergström, F. in Nyberg, L. (2015). Neurocognitive architecture of working memory. Neuron, 88(1), 33–46. CrossRef
Goldman-Rakic, P. S. (1994). Working memory dysfunction in schizophrenia. The Journal of Neuropsychiatry and Clinical Neurosciences, 6(4), 348–357. CrossRef
Holt, J. L. (2014). Investigating visual short-term memory capacity within and between hemifields. Experimental Psychology, 61(2), 127–133. CrossRef
Holt, J. L. in Delvenne, J.-F. (2015). A bilateral advantage for maintaining objects in visual short term memory. Acta Psychologica, 154, 54–61. CrossRef
Kensinger, E. A., Shearer, D. K., Locascio, J. J., Growdon, J. H. in Corkin, S. (2003). Working memory in mild Alzheimer's disease and early Parkinson's disease. Neuropsychology, 17(2), 230–239. CrossRef
Kraft, A., Dyrholm, M., Bundesen, C., Kyllingsbæk, S., Kathmann, N. in Brandt, S. A. (2013). Visual attention capacity parameters covary with hemifield alignment. Neuropsychologia, 51(5), 876–885. CrossRef
Lawrence, M. A. (2013). ez: Easy analysis and visualization of factorial experiments. R package version 3.1.2 [računalniški program]. Pridobljeno s http://CRAN.R-project.org/package=ez.
Luck, S. J. in Vogel, E. K. (2013). Visual working memory capacity: From psychophysics and neurobiology to individual differences. Trends in Cognitive Sciences, 17(8), 391–400. CrossRef
Luria, R., Balaban, H., Awh, E. in Vogel, E. K. (2016). The contralateral delay activity as a neural measure of visual working memory. Neuroscience and Biobehavioral Reviews, 62, 100–108. CrossRef
Ma, W. J., Husain, M. in Bays, P. M. (2014). Changing concepts of working memory. Nature neuroscience, 17(3), 347–356. CrossRef
McCollough, A. W., Machizawa, M. G. in Vogel, E. K. (2007). Electrophysiological measures of maintaining representations in visual working memory. Cortex, 43(1), 77–94. CrossRef
Navarro, D. (2015). Learning statistics with R: A tutorial for psychology students and other beginners. Pridobljeno s https://CRAN.R-project.org/package=lsr.
Park, D. C. in Festini, S. B. (2017). Theories of memory and aging: A look at the past and a glimpse of the future. The Journals of Gerontology Series B, Psychological Sciences and Social Sciences, 72(1), 82–90. CrossRef
Pashler, H. (1988). Familiarity and visual change detection. Perception in Psychophysics, 44(4), 369–378. CrossRef
Peirce, J. W. (2007). PsychoPy—¬¬Psychophysics software in Python. Journal of Neuroscience Methods, 162(1–2), 8–13. CrossRef
R Core Team. (2014). The R project for statistical computing [računalniški program]. Pridobljeno s http://www.R-project.org/.
Repovš, G. in Baddeley, A. (2006). The multi-component model of working memory: Explorations in experimental cognitive psychology. Neuroscience, 139(1), 5–21. CrossRef
Riggall, A. C. in Postle, B. R. (2012). The relationship between working memory storage and elevated activity as measured with functional magnetic resonance imaging. The Journal of Neuroscience: The Official Journal of the Society for Neuroscience, 32(38), 12990–12998. CrossRef
Rouder, J. N., Morey, R. D., Morey, C. C. in Cowan, N. (2011). How to measure working memory capacity in the change detection paradigm. Psychonomic Bulletin & Review, 18(2), 324–330. CrossRef
Umemoto, A., Drew, T., Ester, E. F. in Awh, E. (2010). A bilateral advantage for storage in visual working memory. Cognition, 117(1), 69–79. CrossRef
Vogel, E. K. in Machizawa, M. G. (2004). Neural activity predicts individual differences in visual working memory capacity. Nature, 428(6984), 748–751. CrossRef
Whitney, D. in Levi, D. M. (2011). Visual crowding: A fundamental limit on conscious perception and object recognition. Trends in Cognitive Sciences, 15(4), 160–168. CrossRef
Wickham, H. (2009). ggplot2 [računalniški program]. New York, NY, ZDA: Springer. CrossRef
Zhang, Y., Ye, C., Roberson, D., Zhao, G., Xue, C. in Liu, Q. (2018). The bilateral field advantage effect in memory precision. Quarterly Journal of Experimental Psychology, 71(3), 749–758. CrossRef