ISSN 0439-755X
CN 11-1911/B
主办:中国心理学会
   中国科学院心理研究所
出版:科学出版社

心理学报 ›› 2026, Vol. 58 ›› Issue (9): 1766-1780.doi: 10.3724/SP.J.1041.2026.1766 cstr: 32110.14.2026.1766

• 研究报告 • 上一篇    下一篇

双眼竞争神经位点的刺激依赖性

董波1,2,3, 夏祖宇1, 张明1,2,4   

  1. 1苏州科技大学心理学系;
    2江苏高校哲学社会科学重点研究基地心理与行为科学研究中心;
    3江苏高校哲学社会科学重点研究基地城市发展智库, 苏州 215009;
    4东北师范大学心理学院, 长春 130024
  • 收稿日期:2025-12-29 发布日期:2026-07-29 出版日期:2026-09-25
  • 通讯作者: 董波, E-mail: dongb283@126.com; 张明, E-mail: psyzm@suda.edu.cn
  • 基金资助:
    国家自然科学基金(32100841)、江苏省基础研究计划(BK20240993)、江苏省教育科学规划重点课题(B/2025/01/30)、教育部学位与研究生教育发展中心2025年度主题案例项目(ZT-2510332004)、江苏省学位与研究生教育教学改革重点课题(JGKT23_B047)

Stimulus dependence of neural sites in binocular rivalry

DONG Bo1,2,3, XIA Zuyu1, ZHANG Ming1,2,4   

  1. 1Department of Psychology, Suzhou University of Science and Technology, Suzhou 215009, China;
    2Research Center for Psychology and Behavioral Sciences, Key Research Base of Humanities and Social Sciences in Jiangsu Higher Education Institutions, Suzhou 215009, China;
    3Think Tank for Urban Development, Key Research Base of Humanities and Social Sciences in Jiangsu Higher Education Institutions, Suzhou 215009, China;
    4School of Psychology, Northeast Normal University, Changchun 130024, China
  • Received:2025-12-29 Online:2026-07-29 Published:2026-09-25

摘要: 双眼竞争的神经位点是否随刺激特性灵活变化, 是该领域乃至意识研究的核心问题, 但长期缺乏因果验证。采用经颅直流电刺激分别干扰枕叶、右顶叶、左顶叶、前额叶, 在正交光栅与人脸/房子两类刺激下, 测量眼优势强度与感知交替速率。结果发现稳定的刺激依赖模式:特征水平刺激(光栅)竞争更多涉及枕叶(阳极刺激显著降低眼优势强度)和右顶叶(阳极降低眼优势强度, 阴极提高感知交替速率); 客体水平刺激(人脸/房子)竞争则更多涉及前额叶(阳极降低眼优势强度)和左顶叶(阳极和阴极均降低眼优势强度)。研究从因果层面证明了双眼竞争神经位点的刺激依赖性, 揭示其灵活配置机制, 将混合模型从描述性的静态多位点框架推进至预测性的灵活纳入框架。

关键词: 双眼竞争, 神经位点, tDCS, 刺激依赖性, 灵活配置机制

Abstract: Binocular rivalry is a phenomenon wherein the two eyes receive conflicting visual images, resulting in alternating perceptual dominance rather than image fusion. It offers a unique insight into the neural basis of visual consciousness, as the visual input remains constant despite fluctuations in subjective awareness. A fundamental question in binocular rivalry research concerns identifying the visual pathway along which the competition occurs. According to early theories, rivalry primarily involves monocular neurons in the primary visual cortex (V1) or the lateral geniculate nucleus via interocular inhibition mechanisms. However, electrophysiological studies in monkeys showed stronger correlations between neural activity in higher visual areas, e.g., the inferotemporal cortex, and perceptual states, indicating competition at object-level representations. Since rivalry occurs across multiple hierarchical levels through reciprocal interactions, the hybrid model sought to reconcile these findings. Nevertheless, a critical question remains unaddressed: How might different visual conditions alter the sites at which rivalry competition is most prevalent? Although neuroimaging studies hint at this possibility, there is currently no systematic causal evidence, and this prevents us from understanding whether the brain flexibly recruits different neural resources based on stimulus characteristics.
This study employed transcranial direct current stimulation (tDCS) to systematically examine the causal roles of four candidate brain regions, namely, the occipital cortex, the right parietal cortex, the left parietal cortex, and the prefrontal cortex, across two stimulus types representing different representational levels. Eight independent experiments were conducted based on a 2 × 4 design: two stimulus types (orthogonal gratings as local-feature stimuli vs. face/house images as object-level stimuli) × four brain regions. Each experiment used a within-subjects design with three tDCS conditions, namely, anodal stimulation, cathodal stimulation, and sham stimulation. A total of 160 participants were recruited across experiments (18~22 per experiment; mean age = 20.8 years; all right-handed with normal or corrected-to-normal vision). We used high-definition tDCS with a 4 × 1 electrode montage—comprising one central electrode and four return electrodes—positioned over target regions based on the international 10-10 system. Stimulation intensity (maximum 1.0 mA) was applied for 20 min during each session. Participants completed binocular rivalry tasks using a mirror stereoscope while continuously reporting their perceptual states via key presses. Two dependent variables were measured: eye dominance strength (reflecting competitive bias and relative gain) and perceptual alternation rate (reflecting destabilization and switching frequency).
The results revealed a robust stimulus-dependent pattern of regional involvement. For grating stimuli (Experiments 1~4), occipital tDCS significantly changed eye dominance strength, F(2, 38) = 7.64, p = 0.002, η2p = 0.28, 1 - β > 0.99. Right parietal tDCS also changed eye dominance, F(2, 38) = 5.36, p = 0.009, η2p = 0.22, 1 - β = 0.99, and influenced the alternation rate, F(2, 38) = 3.71, p = 0.034, η2p = 0.16, 1 - β = 0.99. Neither left parietal nor prefrontal tDCS affected grating rivalry. In marked contrast, for face/house stimuli (Experiments 5~8), left parietal tDCS significantly changed eye dominance, F(2, 38) = 3.97, p = 0.027, η2p = 0.17, 1 - β = 0.99. Prefrontal tDCS also altered eye dominance, F(2, 38) = 4.06, p = 0.025, η2p = 0.18, 1 - β = 0.99. Notably, neither occipital nor right parietal stimulation affected face/house rivalry. This double dissociation indicates that simple grating rivalry primarily engages the occipital cortex (early interocular competition) and the right parietal cortex (spatial attention modulation), whereas object-level rivalry recruits the prefrontal cortex (cognitive control) and the left parietal cortex (object feature integration).
This study provides causal evidence for a stimulus-dependent, flexible configuration of rivalry sites. Instead of employing a fixed neural network, the brain flexibly allocates hierarchical neural resources based on the stimulus representational level. These findings advance the hybrid model from a descriptive multi-site framework to a predictive theory that specifies how stimulus properties determine the dominant competitive loci, thereby offering new insights into the flexible neural architecture underlying visual consciousness.

Key words: binocular rivalry, neural sites, tDCS, stimulus-dependent patterns, flexible configuration