基础心理学

现实场景典型空间位置关系客体的解码效应

  • 陈相霖 ,
  • 张军恒 ,
  • 晏碧华
展开
  • 陕西师范大学心理学院暨陕西省行为与认知神经科学重点实验室,西安 710062

收稿日期: 2022-02-02

  网络出版日期: 2022-07-20

Decoding Effect of Objects of Typical Spatial Position Relations in Real-World Scenes

  • CHEN Xianglin ,
  • ZHANG Junheng ,
  • YAN Bihua
Expand
  • School of Psychology, Shaanxi Key Laboratory of Behavior and Cognitive Neuroscience, Shaanxi Normal University, Xi’an 710062

Received date: 2022-02-02

  Online published: 2022-07-20

摘要

通过探讨典型空间关系客体对中单个客体的视觉工作记忆,考察空间位置关系的解码特征和主动客体记忆优势。结果发现:(1)当客体以符合空间位置关系方式呈现时,记忆更准确;(2)符合空间位置关系条件下单个客体提取反应时更长,上方客体反应时更短,记忆更准确;(3)兼具空间位置关系与动作关系客体对中的主动客体记忆正确率更高。结果表明,现实场景客体空间分组中单个客体提取时存在解码现象和顺序效应,对现实中的上方与主动客体存在加工偏好。

本文引用格式

陈相霖 , 张军恒 , 晏碧华 . 现实场景典型空间位置关系客体的解码效应[J]. 心理与行为研究, 2022 , 20(4) : 441 -449 . DOI: 10.12139/j.1672-0628.2022.04.002

Abstract

This study investigated the attributes of group coding and decoding of spatial position relations by testing the VWM (visual working memory) of a single object in a typical spatial relationship object pair in real-world scene. The findings of four experiments were as follows. First, when the object was presented in a way consistent with the spatial position relationship of the real scene, the VWM accuracy of a single object was higher. Second, under the condition of conforming to spatial position relationship, the extraction reaction time of a single object was longer, and the response time of the upper object was shorter. Moreover, the memory accuracy of the upper object was higher. Third, the active objects in the object pairs with both spatial and action relations had higher accuracy. In conclusion, there are decoding phenomena and retrieval order effects when extracting a single object in the object space grouping of real scenes, and the upper object and the active object have advantages on the VWM.

参考文献

Bar, M. (2004). Visual objects in context. Nature Reviews Neuroscience, 5(8), 617–629, doi: 10.1038/nrn1476.
Brady, T. F., & Tenenbaum, J. B. (2013). A probabilistic model of visual working memory: Incorporating higher order regularities into working memory capacity estimates. Psychological Review, 120(1), 85–109, doi: 10.1037/a0030779.
Green, C., & Hummel, J. E. (2006). Familiar interacting object pairs are perceptually grouped. Journal of Experimental Psychology: Human Perception and Performance, 32(5), 1107–1119, doi: 10.1037/0096-1523.32.5.1107.
Groen, I. I. A., Dekker, T. M., Knapen, T., & Silson, E. H. (2022). Visuospatial coding as ubiquitous scaffolding for human cognition. Trends in Cognitive Sciences, 26(1), 81–96, doi: 10.1016/j.tics.2021.10.011.
Gronau, N., & Shachar, M. (2014). Contextual integration of visual objects necessitates attention. Attention, Perception, & Psychophysics, 76(3), 695–714.
Huang, L. Q., & Awh, E. (2018). Chunking in working memory via content-free labels. Scientific Reports, 8(1), 23, doi: 10.1038/s41598-017-18157-5.
Kaiser, D., Stein, T., & Peelen, M. V. (2014). Object grouping based on real-world regularities facilitates perception by reducing competitive interactions in visual cortex. Proceedings of the National Academy of Sciences of the United States of America, 111(30), 11217–11222, doi: 10.1073/pnas.1400559111.
Kaiser, D., Stein, T., & Peelen, M. V. (2015). Real-world spatial regularities affect visual working memory for objects. Psychonomic Bulletin & Review, 22(6), 1784–1790.
Li, J. F., Qian, J. H., & Liang, F. (2018). Evidence for the beneficial effect of perceptual grouping on visual working memory: An empirical study on illusory contour and a meta-analytic study. Scientific Reports, 8(1), 13864, doi: 10.1038/s41598-018-32039-4.
O’Donnell, R. E., Clement, A., & Brockmole, J. R. (2018). Semantic and functional relationships among objects increase the capacity of visual working memory. Journal of Experimental Psychology: Learning, Memory, and Cognition, 44(7), 1151–1158.
Olivers, C. N. L., & Roelfsema, P. R. (2020). Attention for action in visual working memory. Cortex, 131, 179–194, doi: 10.1016/j.cortex.2020.07.011.
Riddoch, M. J., Humphreys, G. W., Edwards, S., Baker, T., & Willson, K. (2003). Seeing the action: Neuropsychological evidence for action-based effects on object selection. Nature Neuroscience, 6(1), 82–89, doi: 10.1038/nn984.
Roberts, K. L., & Humphreys, G. W. (2010). Action relationships concatenate representations of separate objects in the ventral visual system. NeuroImage, 52(4), 1541–1548, doi: 10.1016/j.neuroimage.2010.05.044.
Schurgin, M. W., & Flombaum, J. I. (2018). Visual working memory is more tolerant than visual long-term memory. Journal of Experimental Psychology: Human Perception and Performance, 44(8), 1216–1227, doi: 10.1037/xhp0000528.
Silson, E. H., Zeidman, P., Knapen, T., & Baker, C. I. (2021). Representation of contralateral visual space in the human hippocampus. Journal of Neuroscience, 41(11), 2382–2392, doi: 10.1523/JNEUROSCI.1990-20.2020.
van Ede, F., Chekroud, S. R., & Nobre, A. C. (2019). Human gaze tracks attentional focusing in memorized visual space. Nature Human Behaviour, 3(5), 462–470, doi: 10.1038/s41562-019-0549-y.
Vestner, T., Tipper, S. P., Hartley, T., Over, H., & Rueschemeyer, S. A. (2019). Bound together: Social binding leads to faster processing, spatial distortion, and enhanced memory of interacting partners. Journal of Experimental Psychology: General, 148(7), 1251–1268, doi: 10.1037/xge0000545.
文章导航

/


版权所有 © 《心理与行为研究》编辑部
地址:天津市西青区宾水西道393号,天津师范大学106#邮箱 邮编:300387
电话:022-23540231, 23541213 E-mail:psybeh@126.com
本系统由北京玛格泰克科技发展有限公司设计开发