心理科学进展 ›› 2026, Vol. 34 ›› Issue (8): 1410-1426.doi: 10.3724/SP.J.1042.2026.1410 cstr: 32111.14.2026.1410
黄佳敏, 杨国春
收稿日期:2025-12-17
出版日期:2026-08-15
发布日期:2026-06-03
HUANG Jiamin, YANG Guochun
Received:2025-12-17
Online:2026-08-15
Published:2026-06-03
摘要: 认知控制是个体实现目标导向行为的动态调控机制。传统认知控制研究聚焦于离散认知控制状态之间的比较, 然而, 现实中由认知控制主导的行为往往具有序列性, 需要在多步骤间维持目标一致性并灵活更新。本文从序列性的角度系统综述了认知控制在行为、计算和神经机制的研究进展, 发现认知控制研究和序列记忆研究具有趋同性, 指出认知控制的序列性是值得深入探索的交叉领域。未来研究应着重推动认知控制与序列表征的理论融合与范式革新, 并探索其实际应用价值。
中图分类号:
黄佳敏, 杨国春. (2026). 认知控制的序列性及其认知神经机制. 心理科学进展 , 34(8), 1410-1426.
HUANG Jiamin, YANG Guochun. (2026). The sequential nature of cognitive control and its neurocognitive mechanisms. Advances in Psychological Science, 34(8), 1410-1426.
| [1] 杨国春, 李政汉, 伍海燕, 刘勋.(2019). 认知控制的一般性/特异性机制: 研究逻辑和争论. 生理学报, 71(1), 140-148. https://doi.org/10.13294/j.aps.2018.0096 [2] Abrahamse E., Braem S., Notebaert W., & Verguts T. (2016). Grounding cognitive control in associative learning. Psychological Bulletin, 142(7), 693-728. https://doi.org/10.1037/bul0000047 [3] Akçay, C., & Hazeltine, E. (2008). Conflict adaptation depends on task structure. Journal of Experimental Psychology: Human Perception and Performance, 34(4), 958-973. https://doi.org/10.1037/0096-1523.34.4.958 [4] Alanazi F. I.,Al-Ozzi, T. M., Kalia, S. K., Hodaie, M., Lozano, A. M., Cohn, M., & Hutchison, W. D.(2021). Neurophysiological responses of globus pallidus internus during the auditory oddball task in Parkinson's disease. Neurobiology of Disease, 159, Article 105490. https://doi.org/10.1016/j.nbd.2021.105490 [5] Alexander G. E., DeLong M. R., & Strick P. L. (1986). Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annual Review of Neuroscience, 9, 357-381. https://doi.org/10.1146/annurev.ne.09.030186.002041 [6] Allport D. A., Styles E. A., & Hsieh, S. (1994). Shifting intentional set: Exploring the dynamic control of tasks In C Umiltà & M Moscovitch (Eds), Attention and performance 15: Conscious and nonconscious information processing (pp 421-452) The MIT Press Exploring the dynamic control of tasks. In C. Umiltà & M. Moscovitch (Eds.), Attention and performance 15: Conscious and nonconscious information processing (pp. 421-452). The MIT Press. [7] Alzahabi R., Hussey E., & Ward N. (2022). The influence of context representations on cognitive control states. Cognitive Research: Principles and Implications, 7(1), Article 93. https://doi.org/10.1186/s41235-022-00443-0 [8] Averbeck B. B., Chafee M. V., Crowe D. A., & Georgopoulos A. P. (2003). Neural activity in prefrontal cortex during copying geometrical shapes. I. Single cells encode shape, sequence, and metric parameters. Experimental Brain Research, 150(2), 127-141. https://doi.org/10.1007/s00221-003-1416-6 [9] Badre, D. (2025). Cognitive control. Annual Review of Psychology, 76, 167-195. https://doi.org/10.1146/annurev-psych-022024-103901 [10] Badre D., Bhandari A., Keglovits H.,& Kikumoto, A.(2021). The dimensionality of neural representations for control. Current Opinion in Behavioral Sciences, 38, 20-28. https://doi.org/10.1016/j.cobeha.2020.07.002 [11] Bellet M. E., Gay M., Bellet J., Jarraya B., Dehaene S., van Kerkoerle, T., & Panagiotaropoulos, T. I.(2024). Spontaneously emerging internal models of visual sequences combine abstract and event-specific information in the prefrontal cortex. Cell Reports, 432024.113952 [12] Bernardi S., Benna M. K., Rigotti M., Munuera J., Fusi S.,& Salzman, C. D.(2020). The geometry of abstraction in the hippocampus and prefrontal cortex. Cell, 1832020.09.031 [13] Bognar M., Szekely Z., Varga M. A., Nagy K., Spinelli G., Hartanto A., Majeed N. M., Chen N. R. Y., Gyurkovics M., & Aczel B. (2024). Cognitive control adjustments are dependent on the level of conflict. Scientific Reports, 14(1), Article 3116. https://doi.org/10.1038/s41598-024-53090-4 [14] Botvinick M. M., Braver T. S., Barch D. M., Carter C. S., & Cohen J. D. (2001). Conflict monitoring and cognitive control. Psychological Review, 108(3), 624-652. https://doi.org/10.1037/0033-295x.108.3.624 [15] Botvinick, M. M., & Cohen, J. D. (2014). The computational and neural basis of cognitive control: Charted territory and new frontiers. Cognitive Science, 38(6), 1249-1285. https://doi.org/10.1111/cogs.12126 [16] Botvinick M. M., Cohen J. D.,& Carter, C. S.(2004). Conflict monitoring and anterior cingulate cortex: An update. Trends in Cognitive Sciences, 82004.10.003 [17] Braem S., Bugg J. M., Schmidt J. R., Crump M. J.C., Weissman, D. H., Notebaert, W., & Egner, T.(2019). Measuring adaptive control in conflict tasks. Trends in Cognitive Sciences, 232019.07.002 [18] Brosowsky, N. P., & Crump, M. J. C. (2018). Memory- guided selective attention: Single experiences with conflict have long-lasting effects on cognitive control. Journal of Experimental Psychology: General, 147(8), 1134-1153. https://doi.org/10.1037/xge0000431 [19] Brown G. D., Preece T., & Hulme C. (2000). Oscillator-based memory for serial order. Psychological Review, 107(1), 127-181. https://doi.org/10.1037/0033-295x.107.1.127 [20] Brown, R. M., & Koch, I. (2024). Repetition costs in sequence chunking. Psychonomic Bulletin & Review, 31(2), 802- 818. https://doi.org/10.3758/s13423-023-02338-7 [21] Bullock D.,& Rhodes, B. J. (2003). Competitive queuing models of serial order memory. In A. Miyake & P. Shah (Eds.), Models of working memory: Mechanisms of active maintenance and executive control (pp. 363-400). Cambridge University Press. [22] Burgess, N., & Hitch, G. J. (1999). Memory for serial order: A network model of the phonological loop and its timing. Psychological Review, 106(3), 551-581. https://doi.org/10.1037/0033-295X.106.3.551 [23] Cai W., Ryali S., Pasumarthy R., Talasila V., & Menon V. (2021). Dynamic causal brain circuits during working memory and their functional controllability. Nature Communications, 12(1), Article 3314. https://doi.org/10.1038/s41467-021-23509-x [24] Caplan J. B.,Shafaghat Ardebili, A., & Liu, Y. S.(2022). Chaining models of serial recall can produce positional errors. Journal of Mathematical Psychology, 109, Article 102677. https://doi.org/10.1016/j.jmp.2022.102677 [25] Chiu Y. C.,& Egner, T.(2019). Cortical and subcortical contributions to context-control learning. Neuroscience & Biobehavioral Reviews, 99, 33-41. https://doi.org/10.1016/j.neubiorev.2019.01.019 [26] Cole M. W., Laurent P., & Stocco A. (2013). Rapid instructed task learning: A new window into the human brain's unique capacity for flexible cognitive control. Cognitive, Affective, & Behavioral Neuroscience, 13(1), 1-22. https://doi.org/10.3758/s13415-012-0125-7 [27] Cole M. W., Reynolds J. R., Power J. D., Repovs G., Anticevic A., & Braver T. S. (2013). Multi-task connectivity reveals flexible hubs for adaptive task control. Nature Neuroscience, 16(9), 1348-1355. https://doi.org/10.1038/nn.3470 [28] Conen K. E.,& Desrochers, T. M. (2022). The neural basis of behavioral sequences in cortical and subcortical circuits. In S. M. Sherman (Ed.), Oxford research encyclopedia of neuroscience. Oxford University Press. https://doi.org/10.1093/acrefore/9780190264086.013.42 [29] Czernochowski, D. (2015). ERPs dissociate proactive and reactive control: Evidence from a task-switching paradigm with informative and uninformative cues. Cognitive, Affective, & Behavioral Neuroscience, 15(1), 117-131. https://doi.org/10.3758/s13415-014-0302-y [30] D'Angelo M. C., Jiménez L., Milliken B., & Lupiáñez J. (2013). On the specificity of sequential congruency effects in implicit learning of motor and perceptual sequences. Journal of Experimental Psychology: Learning, Memory, and Cognition, 39(1), 69-84. https://doi.org/10.1037/a0028474 [31] Danielmeier C., Eichele T., Forstmann B. U., Tittgemeyer M., & Ullsperger M. (2011). Posterior medial frontal cortex activity predicts post-error adaptations in task-related visual and motor areas. The Journal of Neuroscience, 31(5), 1780-1789. https://doi.org/10.1523/jneurosci.4299-10.2011 [32] Dehaene S., Meyniel F., Wacongne C., Wang L.,& Pallier, C.(2015). The neural representation of sequences: From transition probabilities to algebraic patterns and linguistic trees. Neuron, 882015.09.019 [33] Desmurget, M., & Turner, R. S. (2010). Motor sequences and the basal ganglia: Kinematics, not habits. The Journal of Neuroscience, 30(22), 7685-7690. https://doi.org/10.1523/jneurosci.0163-10.2010 [34] Desrochers T. M., Ahuja A., Maechler M. R., Shires J., Yusif Rodriguez N., & Berryhill M. E. (2022). Caught in the ACTS: Defining abstract cognitive task sequences as an independent process. Journal of Cognitive Neuroscience, 34(7), 1103-1113. https://doi.org/10.1162/jocn_a_01850 [35] Desrochers, T. M., Amemori, K.-i., & Graybiel, A. M.(2015). Habit learning by naive macaques is marked by response sharpening of striatal neurons representing the cost and outcome of acquired action sequences. Neuron, 872015.07.019 [36] Desrochers T. M., Burk D. C., Badre D.,& Sheinberg, D. L.(2015). The monitoring and control of task sequences in human and non-human primates. Frontiers in Systems Neuroscience, 9, Article 185. https://doi.org/10.3389/fnsys.2015.00185 [37] Desrochers T. M., Chatham C. H.,& Badre, D.(2015). The necessity of rostrolateral prefrontal cortex for higher-level sequential behavior. Neuron, 872015.08.026 [38] Desrochers T. M., Collins A. G. E., & Badre D. (2019). Sequential control underlies robust ramping dynamics in the rostrolateral prefrontal cortex. The Journal of Neuroscience, 39(8), 1471-1483. https://doi.org/10.1523/jneurosci.1060-18.2018 [39] Desrochers T. M.,& McKim, T. H. (2019). What is a sequence? The neural mechanisms of perceptual, motor, and task sequences across species and their interaction with addiction. In S. M. Sherman (Ed.), Oxford research encyclopedia of neuroscience. Oxford University Press. https://doi.org/10.1093/acrefore/9780190264086.013.289 [40] Di Russo, F., & Bianco, V. (2023). Time course of reactive brain activities during a Stroop color-word task: Evidence of specific facilitation and interference effects. Brain Sciences, 13(7), Article 982. https://doi.org/10.3390/brainsci13070982 [41] Ding, N. (2025). Sequence chunking through neural encoding of ordinal positions. Trends in Cognitive Sciences, 29(7), 641-654. https://doi.org/10.1016/j.tics.2025.01.014 [42] Doyle H., Boisseau C. L., Garnaat S. L., Rasmussen S. A., & Desrochers T. M. (2024). Abstract task sequence initiation deficit dissociates anxiety disorders from obsessive-compulsive disorder and healthy controls. Cognitive, Affective, & Behavioral Neuroscience, 24(6), 1186-1201. https://doi.org/10.3758/s13415-024-01207-7 [43] Doyle H., McLaughlin N. C. R., Garnaat S. L., & Desrochers T. M. (2026). Cognitive sequences in obsessive-compulsive disorder are supported by frontal cortex ramping activity. Imaging Neuroscience, 4. https://doi.org/10.1162/IMAG.a.1084 [44] Eckart C., Kraft D., Rademacher L., & Fiebach C. J. (2023). Neural correlates of affective task switching and asymmetric affective task switching costs. Social Cognitive and Affective Neuroscience, 18(1), nsac054. https://doi.org/10.1093/scan/nsac054 [45] Egner, T. (2007). Congruency sequence effects and cognitive control. Cognitive, Affective, & Behavioral Neuroscience, 7(4), 380-390. https://doi.org/10.3758/cabn.7.4.380 [46] Egner, T. (2014). Creatures of habit (and control): A multi- level learning perspective on the modulation of congruency effects. Frontiers in Psychology, 5, Article 1247. https://doi.org/10.3389/fpsyg.2014.01247 [47] Egner, T. (2023). Principles of cognitive control over task focus and task switching. Nature Reviews Psychology, 2(11), 702-714. https://doi.org/10.1038/s44159-023-00234-4 [48] Egner T., Ely S.,& Grinband, J.(2010). Going, going, gone: Characterizing the time-course of congruency sequence effects. Frontiers in Psychology, 1, Article 154. https://doi.org/10.3389/fpsyg.2010.00154 [49] Egner T.,& Hirsch, J.(2005). The neural correlates and functional integration of cognitive control in a Stroop task. NeuroImage, 242004.09.007 [50] Fan Y., Wang M., Fang F., Ding N., & Luo H. (2025). Two-dimensional neural geometry underpins hierarchical organization of sequence in human working memory. Nature Human Behaviour, 9(2), 360-375. https://doi.org/10.1038/s41562-024-02047-8 [51] Farooqui A. A., Gezici T., & Manly T. (2023). Chunking of control: An unrecognized aspect of cognitive resource limits. Journal of Cognition, 6(1), Article 25. https://doi.org/10.5334/joc.275 [52] Favila N., Gurney K., & Overton P. G. (2024). Role of the basal ganglia in innate and learned behavioural sequences. Reviews in the Neurosciences, 35(1), 35-55. https://doi.org/10.1515/revneuro-2023-0038 [53] Fortin N. J., Agster K. L., & Eichenbaum H. B. (2002). Critical role of the hippocampus in memory for sequences of events. Nature Neuroscience, 5(5), 458-462. https://doi.org/10.1038/nn834 [54] Freund, M. C., & Braver, T. S. (2024). Neurocomputational models of task representation. In G. J. Boyle, G. Northoff, A. K. Barbey, F. Fregni, M. Jahanshahi, A. Pascual-Leone, & B. J. Sahakian (Eds.), The Sage handbook of cognitive and systems neuroscience. SAGE Publications Ltd. https://doi.org/10.4135/9781529616651.n29 [55] Friedman, N. P., & Robbins, T. W. (2022). The role of prefrontal cortex in cognitive control and executive function. Neuropsychopharmacology, 47(1), 72-89. https://doi.org/10.1038/s41386-021-01132-0 [56] Frölich S., Esmeyer M., Endrass T., Smolka M. N.,& Kiebel, S. J.(2022). Interaction between habits as action sequences and goal-directed behavior under time pressure. Frontiers in Neuroscience, 16, Article 996957. https://doi.org/10.3389/fnins.2022.996957 [57] Frömer R., Lin H., Dean Wolf C. K., Inzlicht M., & Shenhav A. (2021). Expectations of reward and efficacy guide cognitive control allocation. Nature Communications, 12(1), Article 1030. https://doi.org/10.1038/s41467-021-21315-z [58] Fu Z., Beam D., Chung J. M., Reed C. M., Mamelak A. N., Adolphs R., & Rutishauser U. (2022). The geometry of domain-general performance monitoring in the human medial frontal cortex. Science, 376(6593), Article eabm9922. https://doi.org/10.1126/science.abm9922 [59] Fu Z., Sajad A., Errington S. P., Schall J. D., & Rutishauser U. (2023). Neurophysiological mechanisms of error monitoring in human and non-human primates. Nature Reviews Neuroscience, 24(3), 153-172. https://doi.org/10.1038/s41583-022-00670-w [60] Fu Z., Wu D. J., Ross I., Chung J. M., Mamelak A. N., Adolphs R.,& Rutishauser, U.(2019). Single-neuron correlates of error monitoring and post-error adjustments in human medial frontal cortex. Neuron, 1012018.11.016 [61] Gade M., Declerck M., Philipp A. M., Rey-Mermet A., & Koch I. (2021). Assessing the evidence for asymmetrical switch costs and reversed language dominance effects - A meta-analysis. Journal of Cognition, 4(1), Article 55. https://doi.org/10.5334/joc.186 [62] Gratton G., Coles M. G., & Donchin E. (1992). Optimizing the use of information: Strategic control of activation of responses. Journal of Experimental Psychology: General, 121(4), 480-506. https://doi.org/10.1037//0096-3445.121.4.480 [63] Grossberg, S. (1978). A theory of human memory: Self- organization and performance of sensory-motor codes, maps, and plans. In R. a. S. Rosen, F. M. (Ed.), Progress in theoretical biology (Vol. 5, pp. 233-374). Academic Press. [64] Henson R. N.A.(1998). Short-term memory for serial order: The start-end model. Cognitive Psychology, 361998.0685 [65] Hommel, B. (2022). GOALIATH: A theory of goal-directed behavior. Psychological Research, 86(4), 1054-1077. https://doi.org/10.1007/s00426-021-01563-w [66] Huang Q., Xiao Z., Yu Q., Luo Y., Xu J., Qu Y., Dolan R., Behrens T., & Liu Y. (2024). Replay-triggered brain-wide activation in humans. Nature Communications, 15(1), Article 7185. https://doi.org/10.1038/s41467-024-51582-5 [67] Huang S., Chen C., Mo Y., Zhao Y., Zhu Y., Dong K.,& Xu, T.(2025). Exploring the n-back task: Insights, applications, and future directions. Frontiers in Human Neuroscience, 19, Article 1721330. https://doi.org/10.3389/fnhum.2025.1721330 [68] Huang Y. T., Wu C.-T., Fang Y.-X. M., Fu C.-K., Koike S., & Chao Z. C. (2024). Crossmodal hierarchical predictive coding for audiovisual sequences in the human brain. Communications Biology, 7(1), Article 965. https://doi.org/10.1038/s42003-024-06677-6 [69] Hurlstone M. J., Hitch G. J., & Baddeley A. D. (2014). Memory for serial order across domains: An overview of the literature and directions for future research. Psychological Bulletin, 140(2), 339-373. https://doi.org/10.1037/a0034221 [70] Jadhav S. P., Rothschild G., Roumis D. K.,& Frank, L. M.(2016). Coordinated excitation and inhibition of prefrontal ensembles during awake hippocampal sharp-wave ripple events. Neuron, 902016.02.010 [71] Jáidar O., Albarran E., Albarran E. N., Wu Y. W.,& Ding, J. B.(2025). Refinement of efficient encodings of movement in the dorsolateral striatum throughout learning. Cell Reports, 442025.116229 [72] Janssen M., LeWarne C., Burk D., & Averbeck B. B. (2022). Hierarchical reinforcement learning, sequential behavior, and the dorsal frontostriatal system. Journal of Cognitive Neuroscience, 34(8), 1307-1325. https://doi.org/10.1162/jocn_a_01869 [73] Jarvik, M. E. (1951). Probability learning and a negative recency effect in the serial anticipation of alternative symbols. Journal of Experimental Psychology, 41(4), 291-297. https://doi.org/10.1037/h0056878 [74] Jiang J., Bramão I., Khazenzon A., Wang S. F., Johansson M., & Wagner A. D. (2020). Temporal dynamics of memory-guided cognitive control and generalization of control via overlapping associative memories. The Journal of Neuroscience, 40(11), 2343-2356. https://doi.org/10.1523/jneurosci.1869-19.2020 [75] Jiang J., Brashier N. M., & Egner T. (2015). Memory meets control in hippocampal and striatal binding of stimuli, responses, and attentional control states. The Journal of Neuroscience, 35(44), 14885-14895. https://doi.org/10.1523/jneurosci.2957-15.2015 [76] Jiang J., Heller K.,& Egner, T.(2014). Bayesian modeling of flexible cognitive control. Neuroscience & Biobehavioral Reviews, 46 Pt 1, 30-43. https://doi.org/10.1016/j.neubiorev.2014.06.001 [77] Jiang J., Wang S.-F., Guo W., Fernandez C., & Wagner A. D. (2020). Prefrontal reinstatement of contextual task demand is predicted by separable hippocampal patterns. Nature Communications, 11(1), Article 2053. https://doi.org/10.1038/s41467-020-15928-z [78] Jiang, L. P., & Rao, R. P. N. (2024). Dynamic predictive coding: A model of hierarchical sequence learning and prediction in the neocortex. PLOS Computational Biology, 20(2), Article e1011801. https://doi.org/10.1371/journal.pcbi.1011801 [79] Jiménez L.,& Méndez, A.(2014). Even with time, conflict adaptation is not made of expectancies. Frontiers in Psychology, 5, Article 1042. https://doi.org/10.3389/fpsyg.2014.01042 [80] Johnson B. P., Iturrate I., Fakhreddine R. Y., Bönstrup M., Buch E. R., Robertson E. M., & Cohen L. G. (2023). Generalization of procedural motor sequence learning after a single practice trial. NPJ Science of Learning, 8(1), Article 45. https://doi.org/10.1038/s41539-023-00194-7 [81] Kaefer K., Stella F., McNaughton B. L., & Battaglia F. P. (2022). Replay, the default mode network and the cascaded memory systems model. Nature Reviews Neuroscience, 23(10), 628-640. https://doi.org/10.1038/s41583-022-00620-6 [82] Kerns J. G., Cohen J. D., MacDonald A. W., 3rd, Cho R. Y., Stenger V. A., & Carter C. S. (2004). Anterior cingulate conflict monitoring and adjustments in control. Science, 303(5660), 1023-1026. https://doi.org/10.1126/science.1089910 [83] Kiesel A., Steinhauser M., Wendt M., Falkenstein M., Jost K., Philipp A. M., & Koch I. (2010). Control and interference in task switching—A review. Psychological Bulletin, 136(5), 849-874. https://doi.org/10.1037/a0019842 [84] Lake B. M., Ullman T. D., Tenenbaum J. B., & Gershman S. J. (2017). Building machines that learn and think like people. Behavioral and Brain Sciences, 40, Article e253. https://doi.org/10.1017/s0140525x16001837 [85] Lee P.-S., Ballard T., & Sewell D. K. (2026). Modeling congruency sequence effects with the revised diffusion model for conflict tasks. Journal of Experimental Psychology: Learning, Memory, and Cognition, 52(5), 671-703. https://doi.org/10.1037/xlm0001508 [86] Lee Y., Verhaeghen P., Hazeltine E., & Schumacher E. H. (2025). Meta-analytic evidence for the complex mechanisms underlying congruency sequence effect. Psychological Research, 89(2), Article 63. https://doi.org/10.1007/s00426-025-02093-5 [87] Lewandowsky S., & Murdock B. B., Jr. (1989). Memory for serial order. Psychological Review, 96(1), 25-57. https://doi.org/10.1037/0033-295X.96.1.25 [88] Lim C. E.,& Cho, Y. S.(2021). Cross-task congruency sequence effect without the contribution of multiple expectancy. Acta Psychologica, 214, 103268. https://doi.org/10.1016/j.actpsy.2021.103268 [89] Liu Y., Dolan R. J.,Kurth-Nelson, Z., & Behrens, T. E. J.(2019). Human replay spontaneously reorganizes experience. Cell, 178 2019.06.012 [90] Masís Obando J. A., Musslick S., & Cohen J. D. (2025). Learning expectations shape cognitive control allocation. Proceedings of the National Academy of Sciences, 122(44), Article e2416720122. https://doi.org/10.1073/pnas.2416720122 [91] Maylor, E. A., & Henson, R. N. (2000). Aging and the Ranschburg effect: No evidence of reduced response suppression in old age. Psychology and Aging, 15(4), 657-670. https://doi.org/10.1037/0882-7974.15.4.657 [92] Mayr, U., & Keele, S. W. (2000). Changing internal constraints on action: The role of backward inhibition. Journal of Experimental Psychology: General, 129(1), 4-26. https://doi.org/10.1037/0096-3445.129.1.4 [93] McNaughton, N., & Bannerman, D.(2024). The homogenous hippocampus: How hippocampal cells process available and potential goals. Progress in Neurobiology, 240, Article 102653. https://doi.org/10.1016/j.pneurobio.2024.102653 [94] Menon, V., & D'Esposito, M. (2022). The role of PFC networks in cognitive control and executive function. Neuropsychopharmacology, 47(1), 90-103. https://doi.org/10.1038/s41386-021-01152-w [95] Miller, E. K., & Cohen, J. D. (2001). An integrative theory of prefrontal cortex function. Annual Review of Neuroscience, 24, 167-202. https://doi.org/10.1146/annurev.neuro.24.1.167 [96] Mongillo, G., & Tsodyks, M. (2025). Synaptic encoding of time in working memory. eLife, 14, Article RP107005. https://doi.org/10.7554/eLife.107005.2 [97] Mushiake H., Inase M., & Tanji J. (1991). Neuronal activity in the primate premotor, supplementary, and precentral motor cortex during visually guided and internally determined sequential movements.Journal of Neurophysiology, 66(3), 705-718. [98] Nyberg N., Duvelle É., Barry C.,& Spiers, H. J.(2022). Spatial goal coding in the hippocampal formation. Neuron, 1102021.12. 012 [99] Oberauer, K., & Lewandowsky, S. (2008). Forgetting in immediate serial recall: Decay, temporal distinctiveness, or interference? Psychological Review, 115(3), 544-576. https://doi.org/10.1037/0033-295x.115.3.544 [100] O'Keefe, J., & Dostrovsky, J. (1971). The hippocampus as a spatial map: Preliminary evidence from unit activity in the freely-moving rat. Brain Research, 34, 171-175. https://doi.org/10.1016/0006-8993(71)90358-1 [101] Phillips J. M., Afrasiabi M., Kambi N. A., Redinbaugh M. J., Steely S., Johnson E. R., .. Saalmann, Y. B.(2025). Primate thalamic nuclei select abstract rules and shape prefrontal dynamics. Neuron, 1132025.03.021 [102] Planton S.,& Dehaene, S.(2021). Cerebral representation of sequence patterns across multiple presentation formats. Cortex, 145, 13-36. https://doi.org/10.1016/j.cortex.2021.09.003 [103] Ritz H., Leng X., & Shenhav A. (2022). Cognitive control as a multivariate optimization problem. Journal of Cognitive Neuroscience, 34(4), 569-591. https://doi.org/10.1162/jocn_a_01822 [104] Robinson H. L., Todorova R., Nagy G. A., Gruzdeva A., Paudel P., Oliva A.,& Fernandez-Ruiz, A.(2026). Large sharp-wave ripples promote hippocampo-cortical memory reactivation and consolidation during sleep. Neuron, 1142025. 10.003 [105] Rogers, R. D., & Monsell, S. (1995). Costs of a predictible switch between simple cognitive tasks. Journal of Experimental Psychology: General, 124(2), 207-231. https://doi.org/10.1037/0096-3445.124.2.207 [106] Rosen, M. C., & Freedman, D. J. (2026). How distributed is the brain-wide network that is recruited for cognition? Nature Reviews Neuroscience, 27(2), 138-150. https://doi.org/10.1038/s41583-025-00992-5 [107] Samborska V., Butler J. L., Walton M. E., Behrens T. E. J., & Akam T. (2022). Complementary task representations in hippocampus and prefrontal cortex for generalizing the structure of problems. Nature Neuroscience, 25(10), 1314-1326. https://doi.org/10.1038/s41593-022-01149-8 [108] Schiltenwolf M., Kiesel A., Frings C., & Dignath D. (2024). Memory for abstract control states does not decay with increasing retrieval delays. Psychological Research, 88(2), 547-561. https://doi.org/10.1007/s00426-023-01870-4 [109] Schneider, D., & Logan, G. (2006). Hierarchical control of cognitive processes: Switching tasks in sequences. Journal of Experimental Psychology: General, 135(4), 623-640. https://doi.org/10.1037/0096-3445.135.4.623 [110] Schuck, N. W., & Niv, Y. (2019). Sequential replay of nonspatial task states in the human hippocampus. Science, 364(6447). https://doi.org/10.1126/science.aaw5181 [111] Shima K., Isoda M., Mushiake H., & Tanji J. (2007). Categorization of behavioural sequences in the prefrontal cortex. Nature, 445(7125), 315-318. https://doi.org/10.1038/nature05470 [112] Shin J. D.,& Jadhav, S. P.(2016). Multiple modes of hippocampal-prefrontal interactions in memory-guided behavior. Current Opinion in Neurobiology, 40, 161-169. https://doi.org/10.1016/j.conb.2016.07.015 [113] Shin J. D., Tang W.,& Jadhav, S. P.(2019). Dynamics of awake hippocampal-prefrontal replay for spatial learning and memory-guided decision making. Neuron, 1042019.09.012 [114] Smith J. L., Smith E. A., Provost A. L.,& Heathcote, A.(2010). Sequence effects support the conflict theory of N2 and P3 in the Go/NoGo task. International Journal of Psychophysiology, 752009.11.002 [115] Tacikowski P., Kalender G., Ciliberti D., & Fried I. (2024). Human hippocampal and entorhinal neurons encode the temporal structure of experience. Nature, 635(8037), 160-167. https://doi.org/10.1038/s41586-024-07973-1 [116] Tang M., Barron H. C., & Bogacz R. (2023). Sequential memory with temporal predictive coding.Advances in Neural Information Processing Systems, 36, 44341-44355. [117] Tang W., Shin J. D., & Jadhav S. P. (2021). Multiple time- scales of decision-making in the hippocampus and prefrontal cortex. eLife, 10, Article e66227. https://doi.org/10.7554/eLife.66227 [118] Thomas S. J., Gonsalvez C. J.,& Johnstone, S. J.(2009). Sequence effects in the Go/NoGo task: Inhibition and facilitation. International Journal of Psychophysiology, 742009. 09.002 [119] Trach J. E., McKim T. H., & Desrochers T. M. (2021). Abstract sequential task control is facilitated by practice and embedded motor sequences. Journal of Experimental Psychology: Learning, Memory, and Cognition, 47(10), 1638-1659. https://doi.org/10.1037/xlm0001004 [120] Trotman H., Jelley B.,& Umla-Runge |
| [1] | 王丹, 陈文锋, 王慧, 付雨佳, 刘俊业, 刘正奎. 情绪感染与生理自我表征的共享神经机制[J]. 心理科学进展, 2026, 34(8): 1351-1370. |
| [2] | 胡艾新, 马滢, 呼雨欣, 庹敏, 曾烁, 王庭照. 视觉工作记忆中内部注意选择优势是如何产生的? 基于回溯线索范式视角[J]. 心理科学进展, 2026, 34(7): 1189-1207. |
| [3] | 王协顺, 张伊晓, 李响, 苏彦捷. 自发性知觉经络反应对认知控制的影响及其认知神经基础[J]. 心理科学进展, 2026, 34(5): 794-800. |
| [4] | 高飞, 蔡厚德. 视觉物体表征加工中背-腹通路的相互作用[J]. 心理科学进展, 2026, 34(4): 710-725. |
| [5] | 张秋霞, 陈伟海. 前额叶−海马−内侧隔核环路的theta-gamma相位幅值耦合: 跨脑区协同与工作记忆调控机制[J]. 心理科学进展, 2026, 34(3): 499-514. |
| [6] | 孙焕翔, 张帆, 李思嘉, 张秀玲, 蒋毅. 化繁为简:视觉集合感知的神经机制[J]. 心理科学进展, 2026, 34(2): 251-270. |
| [7] | 王慧, 董妍. 人际互动情境中虚假记忆的主动构建——“去个性化”在社会感染效应中的作用[J]. 心理科学进展, 2025, 33(9): 1617-1629. |
| [8] | 楚克群, 朱风书. 运动干预对攻击行为的抑制及其作用机制[J]. 心理科学进展, 2025, 33(7): 1257-1266. |
| [9] | 刘佳丽, 赵海潮, 何清华. 自我中心与非自我中心空间参考系转换的神经机制[J]. 心理科学进展, 2025, 33(6): 1027-1035. |
| [10] | 谢婷婷, 王丽娟. 动作编码促进孤独症谱系障碍学龄儿童记忆的影响因素及机制[J]. 心理科学进展, 2025, 33(6): 1067-1076. |
| [11] | 雷旭, 翁琳曼, 喻婧. 清醒静息过程的记忆巩固: 来自脑电和功能磁共振的证据[J]. 心理科学进展, 2025, 33(5): 729-743. |
| [12] | 邓虎, 符艳冉, 吴刚. 时间干涉刺激干预精神分裂症工作记忆缺陷有效性与脑区特异性及跨频耦合机制[J]. 心理科学进展, 2025, 33(4): 620-631. |
| [13] | 术鑫迪, 刘菡茵, 王瑾, 刘志远, 刘兰芳. 脑间同步性的产生机制及其功能[J]. 心理科学进展, 2025, 33(3): 439-451. |
| [14] | 张艳霞, 李晶. 逐向导航辅助对大尺度环境下空间记忆的影响及改进方法[J]. 心理科学进展, 2025, 33(1): 77-91. |
| [15] | 刘威, 陈瑞欣, 郭金朋. 应激下人类情景记忆巩固的神经重放机制[J]. 心理科学进展, 2024, 32(7): 1031-1047. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||