Advances in Psychological Science ›› 2022, Vol. 30 ›› Issue (6): 1262-1269.doi: 10.3724/SP.J.1042.2022.01262
• Regular Articles • Previous Articles Next Articles
LIN Wenyi1, HE Hao1,3, GUAN Qing1,2,3()
Received:
2021-05-13
Online:
2022-06-15
Published:
2022-04-26
Contact:
GUAN Qing
E-mail:guanqing@szu.edu.cn
CLC Number:
LIN Wenyi, HE Hao, GUAN Qing. Functional brain networks underlying rumination[J]. Advances in Psychological Science, 2022, 30(6): 1262-1269.
[1] | 李雨, 舒华. (2014). 默认网络的神经机制、功能假设及临床应用. 心理科学进展, 22(2), 234-249. |
[2] | 梁夏, 王金辉, 贺永. (2010). 人脑连接组研究: 脑结构网络和脑功能网络. 科学通报, 55(16), 1565-1583. |
[3] | 孙俊峰, 洪祥飞, 童善保. (2010). 复杂脑网络研究进展--结构、功能、计算与应用. 复杂系统与复杂性科学, 7(4), 74-90. |
[4] | 徐龙洲. (2021). 基于fMRI脑影像数据的大尺度脑网络自组织临界行为研究 (硕士学位论文). 兰州大学. |
[5] | 杨营凯, 刘衍玲. (2016). 抑郁反刍的认知神经机制. 心理科学进展, 24(7), 1042-1049. |
[6] |
Ando' A., Giromini L., Ales F., & Zennaro A. (2020). A multimethod assessment to study the relationship between rumination and gender differences. Scandinavian Journal of Psychology, 61(6), 740-745.
doi: 10.1111/sjop.12666 URL |
[7] |
Andrews-Hanna J. R. (2012). The brain's default network and its adaptive role in internal mentation. Neuroscientist, 18(3), 251-270.
doi: 10.1177/1073858411403316 pmid: 21677128 |
[8] |
Andrews-Hanna J. R., Reidler J. S., Sepulcre J., Poulin R., & Buckner R. L. (2010). Functional-anatomic fractionation of the brain's default network. Neuron, 65(4), 550-562.
doi: 10.1016/j.neuron.2010.02.005 pmid: 20188659 |
[9] | Andrews-Hanna J. R., Smallwood J., & Spreng R. N. (2014). The default network and self-generated thought: component processes, dynamic control, and clinical relevance. Annals of the New York Academy of Sciences, 1316(1), 29-52. |
[10] |
Apazoglou K., Küng A. L., Cordera P., Aubry J. M., Dayer A., Vuilleumier P., & Piguet C. (2019). Rumination related activity in brain networks mediating attentional switching in euthymic bipolar patients. International Journal of Bipolar Disorders, 7(1), 3.
doi: 10.1186/s40345-018-0137-5 pmid: 30637531 |
[11] |
Bartova L., Meyer B. M., Diers K., Rabl U., Scharinger C., Popovic A., … Pezawas L. (2015). Reduced default mode network suppression during a working memory task in remitted major depression. Journal of Psychiatric Research, 64, 9-18.
doi: 10.1016/j.jpsychires.2015.02.025 pmid: 25801734 |
[12] |
Berman M. G., Peltier S., Nee D. E., Kross E., Deldin P. J., & Jonides J. (2011). Depression, rumination and the default network. Social Cognitive and Affective Neuroscience, 6(5), 548-555.
doi: 10.1093/scan/nsq080 pmid: 20855296 |
[13] |
Bordi F, & LeDoux J. (1992). Sensory Tuning beyond the Sensory System: An initial analysis of auditory response properties of neurons in the lateral amygdaloid nucleus and overlying areas of the Striatum. The Journal of Neuroscience, 12(7), 2493-2503
doi: 10.1523/JNEUROSCI.12-07-02493.1992 URL |
[14] | Buckner R. L., Andrews-Hanna J. R., & Schacter D. L. (2008). The brain's default network: Anatomy, function, and relevance to disease. Annals of the New York Academy of Sciences, 1124, 1-38. |
[15] |
Buckner R. L., & Krienen F. M. (2013). The evolution of distributed association networks in the human brain. Trends in Cognitive Sciences, 17(12), 648-665.
doi: 10.1016/j.tics.2013.09.017 pmid: 24210963 |
[16] | Burkhouse K. L., Jacobs R. H., Peters A. T., Ajilore O., Watkins E. R., & Langenecker S. A. (2017). Neural correlates of rumination in adolescents with remitted major depressive disorder and healthy controls. Cognitive, Affective, & Behavioral Neuroscience, 17(2), 394-405. |
[17] |
Chang C., Liu Z., Chen M. C., Liu X., & Duyn J. H. (2013). EEG correlates of time-varying BOLD functional connectivity. NeuroImage, 72, 227-236.
doi: 10.1016/j.neuroimage.2013.01.049 URL |
[18] | Chen X., Chen N. X., Shen Y. Q., Li H. X., Li L., Lu B.,... Yan C. G. (2020). The subsystem mechanism of default mode network underlying rumination: A reproducible neuroimaging study. NeuroImage, 221, 117185. |
[19] | Chen X., & Yan C. G. (2021). Hypostability in the default mode network and hyperstability in the frontoparietal control network of dynamic functional architecture during rumination. NeuroImage, 241, 118427. |
[20] |
Christoff K., Irving Z. C., Fox K. C. R., Spreng R. N., & Andrews-Hanna J. R. (2016). Mind-wandering as spontaneous thought: A dynamic framework. Nature Reviews Neuroscience, 17(11), 718-731.
doi: 10.1038/nrn.2016.113 pmid: 27654862 |
[21] | Constantin K., English M. M., & Mazmanian D. (2018). Anxiety, depression, and procrastination among students: Rumination plays a larger mediating role than worry. Journal of Rational-Emotive and Cognitive-Behavior Therapy, 36(1), 15-27. |
[22] | Cooney R. E., Joormann J., Eugène F., Dennis E. L., & Gotlib I. H. (2010). Neural correlates of rumination in depression. Cognitive, Affective & Behavioral Neuroscience, 10(4), 470-478. |
[23] |
Craig A. D. (2009). How do you feel--now? The anterior insula and human awareness. Nature Reviews: Neuroscience, 10(1), 59-70.
doi: 10.1038/nrn2555 URL |
[24] |
Delaveau P., Arruda Sanchez T., Steffen R., Deschet K., Jabourian M., Perlbarg V.,... Fossati P. (2017). Default mode and task-positive networks connectivity during the N-Back task in remitted depressed patients with or without emotional residual symptoms. Human Brain Mapping, 38(7), 3491-3501.
doi: 10.1002/hbm.23603 pmid: 28390165 |
[25] |
Dodd A., Lockwood E., Mansell W., & Palmier-Claus J. (2019). Emotion regulation strategies in bipolar disorder: A systematic and critical review. Journal of Affective Disorders, 246, 262-284.
doi: 10.1016/j.jad.2018.12.026 URL |
[26] |
Gao W., Wu H., Siddiqui M. K., & Baig A. Q. (2018). Study of biological networks using graph theory. Saudi Journal of Biological Sciences, 25(6), 1212-1219
doi: 10.1016/j.sjbs.2017.11.022 URL |
[27] |
Gonzalez-Castillo J., & Bandettini P. A. (2018). Task-based dynamic functional connectivity: Recent findings and open questions. NeuroImage, 180(Pt B),526-533.
doi: S1053-8119(17)30653-5 pmid: 28780401 |
[28] |
Grafton B., Southworth F., Watkins E., & MacLeod C. (2016). Stuck in a sad place: Biased attentional disengagement in rumination. Emotion, 16(1), 63-72.
doi: 10.1037/emo0000103 pmid: 26214570 |
[29] | Gu S., Satterthwaite T. D., Medaglia J. D., Yang M., Gur R. E., Gur R. C., & Bassett D. S. (2015). Emergence of system roles in normative neurodevelopment. Proceedings of the National Academy of Sciences of the United States of America, 112(44), 13681-13686. |
[30] |
Hamilton J. P., Farmer M., Fogelman P., & Gotlib I. H. (2015). Depressive rumination, the default-mode network, and the dark matter of clinical neuroscience. Biological Psychiatry, 78(4), 224-230.
doi: 10.1016/j.biopsych.2015.02.020 pmid: 25861700 |
[31] |
Hamilton J. P., Furman D. J., Chang C., Thomason M. E., Dennis E., & Gotlib I. H. (2011). Default-mode and task-positive network activity in major depressive disorder: implications for adaptive and maladaptive rumination. Biological Psychiatry, 70(4), 327-333.
doi: 10.1016/j.biopsych.2011.02.003 pmid: 21459364 |
[32] |
Hur J., Gaul K., & Berenbaum H. (2019). Different patterns of attention bias in worry and rumination. Cognitive Therapy and Research, 43(4), 713-725.
doi: 10.1007/s10608-018-09993-4 URL |
[33] | Jacob Y., Morris L. S., Huang K. H., Schneider M., Rutter S., Verma G., Murrough J. W., & Balchandani P. (2020). Neural correlates of rumination in major depressive disorder: A brain network analysis. NeuroImage: Clinical, 25, 102142. |
[34] |
Jacob Y., Winetraub Y., Raz G., Ben-Simon E., Okon-Singer H., Rosenberg-Katz K., Hendler T., & Ben-Jacob E. (2016). Dependency network analysis (DEPNA) reveals context related influence of brain network nodes. Scientific Reports, 6, 27444.
doi: 10.1038/srep27444 pmid: 27271458 |
[35] |
Joorman J., & D’Avanzato C. (2010). Emotion regulation in depression: Examining the role of cognitive processes. Cognition and Emotion, 24(6), 913-939.
doi: 10.1080/02699931003784939 URL |
[36] |
Kaiser R. H. (2017). Neurocognitive markers of depression. Biological Psychiatry, 81(4), e29-e31.
doi: 10.1016/j.biopsych.2016.11.007 URL |
[37] | Kaiser R. H., Andrews-Hanna J. R., Wager T. D., & Pizzagalli D. A. (2015). Large-Scale network dysfunction in major depressive disorder: A meta-analysis of resting-state functional connectivity. Journal of the American Medical Association Psychiatry, 72(6), 603-611. |
[38] |
Kaiser R. H., Kang M. S., Lew Y., van der Feen J., Aguirre B., Clegg R.,... Pizzagalli D. A. (2019). Abnormal frontoinsular-default network dynamics in adolescent depression and rumination: A preliminary resting-state co-activation pattern analysis. Neuropsychopharmacology, 44(9), 1604-1612.
doi: 10.1038/s41386-019-0399-3 URL |
[39] | Kaiser R. H., Snyder H. R., Goer F., Clegg R, Ironside M., & Pizzagalli D. A. (2018). Attention bias in rumination and depression: Cognitive mechanisms and brain networks. Clinical Psychology-Science and Practice, 6(6), 765-782. |
[40] |
Kaiser R. H., Whitfield-Gabrieli S., Dillon D. G., Goer F., Beltzer M., Minkel J.,... Pizzagalli D. A. (2016). Dynamic resting-state functional connectivity in major depression. Neuropsychopharmacology, 41(7), 1822-1830.
doi: 10.1038/npp.2015.352 URL |
[41] |
Kertz S. J., Petersen D. R., & Stevens K. T. (2019). Cognitive and attentional vulnerability to depression in youth: A review. Clinical Psychology Review, 71, 63-77.
doi: 10.1016/j.cpr.2019.01.004 URL |
[42] |
Koster E. H., de Lissnyder E., Derakshan N., & de Raedt R. (2011). Understanding depressive rumination from a cognitive science perspective: the impaired disengagement hypothesis. Clinical Psychology Review, 31(1), 138-145.
doi: 10.1016/j.cpr.2010.08.005 pmid: 20817334 |
[43] |
Koch M. A., Norris D. G., & Hund-Georgiadis M. (2002). An investigation of functional and anatomical connectivity using magnetic resonance imaging. Neuroimage, 16(1), 241-250.
doi: 10.1006/nimg.2001.1052 URL |
[44] |
Kraus C., Mkrtchian A., Kadriu B., Nugent A. C., Zarate C. A., Jr., & Evans J. W. (2020). Evaluating global brain connectivity as an imaging marker for depression: Influence of preprocessing strategies and placebo-controlled ketamine treatment. Neuropsychopharmacology, 45(6), 982-989.
doi: 10.1038/s41386-020-0624-0 URL |
[45] | Kühn S., Vanderhasselt M. A., de Raedt R., & Gallinat J. (2012). Why ruminators won't stop: The structural and resting state correlates of rumination and its relation to depression. Journal of Affective Disorders, 141(2-3), 352-360. |
[46] | Li L., Lu B., & Yan C. G. (2020). Stability of dynamic functional architecture differs between brain networks and states. NeuroImage, 216, 116-230. |
[47] |
Li R., Zhang S., Yin S., Ren W., He R., & Li J. (2018). The fronto-insular cortex causally mediates the default- mode and central-executive networks to contribute to individual cognitive performance in healthy elderly. Human Brain Mapping, 39(11), 4302-4311.
doi: 10.1002/hbm.24247 URL |
[48] |
Lydon-Staley D. M., Kuehner C., Zamoscik V., Huffziger S., Kirsch P., & Bassett D. S. (2019). Repetitive negative thinking in daily life and functional connectivity among default mode, fronto-parietal, and salience networks. Transl Psychiatry, 9(1), 234.
doi: 10.1038/s41398-019-0560-0 URL |
[49] | Martin L. L., & Tesser A. (1989). Toward a motivational and structural theory of ruminative thought. America: The Guilford Press. |
[50] |
Menon V. (2011). Large-scale brain networks and psychopathology: A unifying triple network model. Trends in Cognitive Sciences, 15(10), 483-506.
doi: 10.1016/j.tics.2011.08.003 URL |
[51] |
Mihailova S., & Jobson L. (2020). The impact of depression and culture on responses to intrusive autobiographical memories: Cognitive appraisals, cognitive avoidance, and brooding rumination. British Journal of Clinical Psychology, 59(1), 66-79.
doi: 10.1111/bjc.12232 pmid: 31364774 |
[52] |
Morrow J., & Nolen-Hoeksema S. (1990). Effects of responses to depression on the remediation of depressive affect. Journal of Personality and Social Psychology, 58(3), 519-527.
pmid: 2324941 |
[53] | Nejad A. B., Fossati P., & Lemogne C. (2013). Self-referential processing, rumination, and cortical midline structures in major depression. Frontiers in Human Neuroscience, 7, 666. |
[54] |
Nejad A. B., Rotgé J. Y., Valabregue R., Guérin-Langlois C., Hoertel N., Gorwood P., … Lemogne C. (2019). Medial prefrontal disengagement during self-focus in formerly depressed patients prone to rumination. Journal of Affective Disorders, 247, 36-44.
doi: S0165-0327(18)31824-X pmid: 30641339 |
[55] |
Nejati V., Majdi R., Salehinejad M. A., & Nitsche M. A. (2021). The role of dorsolateral and ventromedial prefrontal cortex in the processing of emotional dimensions. Scientific Reports, 11(1), 1971.
doi: 10.1038/s41598-021-81454-7 pmid: 33479323 |
[56] |
Nolen-Hoeksema S. (1987). Sex differences in unipolar depression: Evidence and theory. Psychological Bulletin, 101(2), 259-282.
pmid: 3562707 |
[57] |
Nolen-Hoeksema S. (1991). Responses to depression and their effects on the duration of depressive episodes. Journal of Abnormal Psychology, 100(4), 569-582.
pmid: 1757671 |
[58] |
Nolen-Hoeksema S. (2000). The role of rumination in depressive disorders and mixed anxiety/depressive symptoms. Journal of Abnormal Psychology, 109(3), 504-511.
pmid: 11016119 |
[59] |
Nolen-Hoeksema S., Wisco B. E., & Lyubomirsky S. (2008). Rethinking rumination. Perspectives on Psychological Science, 3(5), 400-424.
doi: 10.1111/j.1745-6924.2008.00088.x pmid: 26158958 |
[60] |
Peters S. K., Dunlop K., & Downar J. (2016). Cortico- Striatal-Thalamic loop circuits of the salience network: A central pathway in psychiatric disease and treatment. Frontiers in Systems Neuroscience, 10, 104.
doi: 10.3389/fnsys.2016.00104 pmid: 28082874 |
[61] |
Petersen S. E., & Sporns O. (2015). Brain networks and cognitive architectures. Neuron, 88(1), 207-219.
doi: 10.1016/j.neuron.2015.09.027 pmid: 26447582 |
[62] |
Price R. B., Lane S., Gates K., Kraynak T. E., Horner M. S., Thase M. E., & Siegle G. J. (2017). Parsing heterogeneity in the brain connectivity of depressed and healthy adults during positive mood. Biological Psychiatry, 81(4), 347-357.
doi: 10.1016/j.biopsych.2016.06.023 URL |
[63] |
Provenzano J., Fossati P., Dejonckheere E., Verduyn P., & Kuppens P. (2021). Inflexibly sustained negative affect and rumination independently link default mode network efficiency to subclinical depressive symptoms. Journal of Affective Disorders, 293, 347-354.
doi: 10.1016/j.jad.2021.06.051 pmid: 34229288 |
[64] |
Reed A. E., Chan L., & Mikels J. A. (2014). Meta-analysis of the age-related positivity effect: Age differences in preferences for positive over negative information. Psychology and Aging, 29(1), 1-15.
doi: 10.1037/a0035194 URL |
[65] |
Ricarte Trives J. J., Navarro Bravo B., Latorre Postigo J. M., Ros Segura L., & Watkins E. (2016). Age and gender differences in emotion regulation strategies: Autobiographical memory, rumination, problem solving and distraction. The Spanish Journal of Psychology, 19, E43.
doi: 10.1017/sjp.2016.46 URL |
[66] |
Rosenbaum D., Haipt A., Fuhr K., Haeussinger F. B., Metzger F. G., Nuerk H. C.,... Ehlis A. C. (2017). Aberrant functional connectivity in depression as an index of state and trait rumination. Scientific Reports, 7(1), 2174.
doi: 10.1038/s41598-017-02277-z pmid: 28526867 |
[67] |
Rosenbaum D., Maier M. J., Hudak J., Metzger F. G., Wells A., Fallgatter A. J., & Ehlis A. C. (2018). Neurophysiological correlates of the attention training technique: A component study. NeuroImage: Clinical, 19, 1018-1024.
doi: 10.1016/j.nicl.2018.06.021 URL |
[68] |
Rosenbaum D., Thomas M., Hilsendegen P., Metzger F. G., Haeussinger F. B., Nuerk H.-C., … Ehlis A.-C. (2018). Stress-related dysfunction of the right inferior frontal cortex in high ruminators: An fNIRS study. NeuroImage: Clinical, 18, 510-517.
doi: 10.1016/j.nicl.2018.02.022 URL |
[69] | Sanchez A., Vanderhasselt M. A., Baeken C., & de Raedt R. (2016). Effects of tDCS over the right DLPFC on attentional disengagement from positive and negative faces: An eye-tracking study. Cognitive, Affective & Behavioral Neuroscience, 16(6), 1027-1038. |
[70] |
Santa Maria A., Reichert F., Hummel S. B., & Ehring T. (2012). Effects of rumination on intrusive memories: Does processing mode matter? Journal of Behavior Therapy and Experimental Psychiatry, 43(3), 901-909.
doi: 10.1016/j.jbtep.2012.01.004 URL |
[71] |
Sin E. L. L., Shao R., Geng X., Cho V., & Lee T. M. C. (2018). The neuroanatomical basis of two subcomponents of rumination: A VBM study. Frontiers in Human Neuroscience, 12, 324.
doi: 10.3389/fnhum.2018.00324 URL |
[72] |
Smallwood J., Bernhardt B. C., Leech R., Bzdok D., Jefferies E., & Margulies D. S. (2021). The default mode network in cognition: a topographical perspective. Nature Reviews: Neuroscience, 22(8), 503-513.
doi: 10.1038/s41583-021-00474-4 URL |
[73] |
Smith K. E., Mason T. B., & Lavender J. M. (2018). Rumination and eating disorder psychopathology: A meta-analysis. Clinical Psychology Review, 61, 9-23.
doi: 10.1016/j.cpr.2018.03.004 URL |
[74] |
Sporns O. (2014). Contributions and challenges for network models in cognitive neuroscience. Nature Neuroscience, 17(5), 652-660.
doi: 10.1038/nn.3690 pmid: 24686784 |
[75] |
Spreng R. N., Mar R. A., & Kim A. S. (2009). The common neural basis of autobiographical memory, prospection, navigation, theory of mind, and the default mode: A quantitative meta-analysis. Journal of Cognitive Neuroscience, 21(3), 489-510.
doi: 10.1162/jocn.2008.21029 URL |
[76] | Sridharan D., Levitin D. J., & Menon V. (2008). A critical role for the right fronto-insular cortex in switching between central-executive and default-mode networks. Proceedings of the National Academy of Sciences of the United States of America, 105(34), 12569-12574. |
[77] |
Steinfurth E. C., Alius M. G., Wendt J., & Hamm A. O. (2017). Physiological and neural correlates of worry and rumination: Support for the contrast avoidance model of worry. Psychophysiology, 54(2), 161-171.
doi: 10.1111/psyp.12767 pmid: 27766641 |
[78] |
Topper M., Emmelkamp P. M., Watkins E., & Ehring T. (2017). Prevention of anxiety disorders and depression by targeting excessive worry and rumination in adolescents and young adults: A randomized controlled trial. Behaviour Research and Therapy, 90, 123-136.
doi: 10.1016/j.brat.2016.12.015 URL |
[79] | Tozzi L., Zhang X., Chesnut M., Holt-Gosselin B., Ramirez C. A., & Williams L. M. (2021). Reduced functional connectivity of default mode network subsystems in depression: Meta-analytic evidence and relationship with trait rumination. NeuroImage: Clinical, 30, 102570. |
[80] |
Vălenaş S. P., Szentágotai-Tătar A., Grafton B., Notebaert L., Miu A. C., & MacLeod C. (2017). Prediction of pre-exam state anxiety from ruminative disposition: The mediating role of impaired attentional disengagement from negative information. Behaviour Research and Therapy, 91, 102-110.
doi: S0005-7967(17)30023-2 pmid: 28171782 |
[81] |
Vecchio F., Miraglia F., & Maria Rossini P. (2017). Connectome: Graph theory application in functional brain network architecture. Clinical Neurophysiology Practice, 2, 206-213.
doi: 10.1016/j.cnp.2017.09.003 URL |
[82] |
Wagner G., Koch K., Schachtzabel C., Peikert G., Schultz C. C., Reichenbach J. R., Sauer H., & Schlösser R. G. (2013). Self-referential processing influences functional activation during cognitive control: an fMRI study. Social Cognitive and Affective Neuroscience, 8(7), 828-837.
doi: 10.1093/scan/nss074 pmid: 22798398 |
[83] |
Watkins E., Moberly N. J., & Moulds M. L. (2008). Processing mode causally influences emotional reactivity: Distinct effects of abstract versus concrete construal on emotional response. Emotion, 8(3), 364-378.
doi: 10.1037/1528-3542.8.3.364 pmid: 18540752 |
[84] |
Yang Y., Cao S., Shields G. S., Teng Z., & Liu Y. (2017). The relationships between rumination and core executive functions: A meta-analysis. Depression and Anxiety, 34(1), 37-50.
doi: 10.1002/da.22539 URL |
[85] |
Yeo B. T., Krienen F. M., Sepulcre J., Sabuncu M. R., Lashkari D., Hollinshead M.,... Buckner R. L. (2011). The organization of the human cerebral cortex estimated by intrinsic functional connectivity. Journal of Neurophysiology, 106(3), 1125-1165.
doi: 10.1152/jn.00338.2011 URL |
[86] | Zhang R., Kranz G. S., Zou W., Deng Y., Huang X., Lin K., & Lee T. M. C. (2020). Rumination network dysfunction in major depression: A brain connectome study. Progress in Neuro-Psychopharmacology and Biological Psychiatry, 98, 109819. |
[87] | Zhou H. X., Chen X., Shen Y. Q., Li L., Chen N. X., Zhu Z. C.,... Yan C. G. (2020). Rumination and the default mode network: Meta-analysis of brain imaging studies and implications for depression. NeuroImage, 206, 116287. |
[88] |
Zhu X., Zhu Q., Shen H., Liao W., & Yuan F. (2017). Rumination and default mode network subsystems connectivity in first-episode, drug-naive young patients with major depressive disorder. Scientific Reports, 7, 43105.
doi: 10.1038/s41598-017-00275-9 URL |
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[13] | LI Liang, ZHENG Yingjun, WU Chao, LI Juanhua, ZHANG Changxin, LU Lingxi. The brain network mechanisms underlying perceptual unmasking cue-induced improvement of speech recognition under cocktail-party listening conditions [J]. Advances in Psychological Science, 2017, 25(12): 2099-2110. |
[14] | YANG Yingkai; LIU Yanling. The cognitive neural mechanism of depressive rumination [J]. Advances in Psychological Science, 2016, 24(7): 1042-1049. |
[15] | LEI Xu; ZHAO Wenrui. Simultaneous EEG-fMRI studies of sleep-dependent memory consolidation [J]. Advances in Psychological Science, 2016, 24(3): 327-334. |
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