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번호 | 참고문헌 | 국회도서관 소장유무 |
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1 | Maia TV, Cano-Colino M. The role of serotonin in orbitofrontal function and obsessive-compulsive disorder. Clin Psychol Sci 2015;3:460-482. | 미소장 |
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5 | Mohammadi MR, Ahmadi N, Khaleghi A, Mostafavi SA, Kamali K, Rahgozar M, et al. Prevalence and correlates of psychiatric disorders in a national survey of Iranian children and adolescents. Iran J Psychiatry 2019;14:1-15. | 미소장 |
6 | Mohammadi MR, Ahmadi N, Khaleghi A, Zarafshan H, Mostafavi SA, Kamali K, et al. Prevalence of autism and its comorbidities and the relationship with maternal psychopathology:a national population-based study. Arch Iran Med 2019;22:546-553. | 미소장 |
7 | Zarafshan H, Khaleghi A, Mohammadi MR, Moeini M, Malmir N. Electroencephalogram complexity analysis in children with attention-deficit/hyperactivity disorder during a visual cognitive task. J Clin Exp Neuropsychol 2016;38:361-369. | 미소장 |
8 | Khaleghi A, Zarafshan H, Mohammadi MR. Visual and auditory steady-state responses in attention-deficit/hyperactivity disorder. Eur Arch Psychiatry Clin Neurosci 2019;269:645-655. | 미소장 |
9 | Mostafavi SA, Khaleghi A, Mohammadi MR. Noninvasive brain stimulation in alcohol craving: a systematic review and meta-analysis. Prog Neuropsychopharmacol Biol Psychiatry 2020;101:109938. | 미소장 |
10 | Khaleghi A, Pirzad Jahromi G, Zarafshan H, Mostafavi SA, Mohammadi MR. Effects of transcranial direct current stimulation of prefrontal cortex on risk-taking behavior. Psychiatry Clin Neurosci 2020;74:455-465. | 미소장 |
11 | Khaleghi A, Zarafshan H, Vand SR, Mohammadi MR. Effects of non-invasive neurostimulation on autism spectrum disorder:a systematic review. Clin Psychopharmacol Neurosci 2020;18:527-552. | 미소장 |
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29 | Markram H. The human brain project. Sci Am 2012;306:50-55. | 미소장 |
30 | Tsoutsouras V, Sirakoulis GC, Pavlos GP, Iliopoulos AC. Simulation of healthy and epileptiform brain activity using cellular automata. Int J Bifurc Chaos 2012;22:1250229. | 미소장 |
31 | Javanbakht A, Alberini CM. Editorial: Neurobiological models of psychotherapy. Front Behav Neurosci 2019;13:144. | 미소장 |
32 | Zilcha-Mano S, Roose SP, Brown PJ, Rutherford BR. Not just nonspecific factors: the roles of alliance and expectancy in treatment, and their neurobiological underpinnings. Front Behav Neurosci 2019;12:293. | 미소장 |
33 | Iglesias S, Tomiello S, Schneebeli M, Stephan KE. Models of neuromodulation for computational psychiatry. Wiley Interdiscip Rev Cogn Sci 2017;8:e1420. | 미소장 |
34 | Murray JD, Anticevic A, Gancsos M, Ichinose M, Corlett PR, Krystal JH, et al. Linking microcircuit dysfunction to cognitive impairment: effects of disinhibition associated with schizophrenia in a cortical working memory model. Cereb Cortex 2014;24:859-872. | 미소장 |
35 | Lisman JE, Coyle JT, Green RW, Javitt DC, Benes FM, Heckers S, et al. Circuit-based framework for understanding neurotransmitter and risk gene interactions in schizophrenia. Trends Neurosci 2008;31:234-242. | 미소장 |
36 | Krystal JH, Karper LP, Seibyl JP, Freeman GK, Delaney R, Bremner JD, et al. Subanesthetic effects of the noncompetitive NMDA antagonist, ketamine, in humans. Psychotomimetic, perceptual, cognitive, and neuroendocrine responses. Arch Gen Psychiatry 1994;51:199-214. | 미소장 |
37 | Anticevic A, Gancsos M, Murray JD, Repovs G, Driesen NR, Ennis DJ, et al. NMDA receptor function in large-scale anticorrelated neural systems with implications for cognition and schizophrenia. Proc Natl Acad Sci U S A 2012;109:16720-16725. | 미소장 |
38 | Frank MJ. Dynamic dopamine modulation in the basal ganglia:a neurocomputational account of cognitive deficits in medicated and nonmedicated Parkinsonism. J Cogn Neurosci 2005;17:51-72. | 미소장 |
39 | Gurney KN, Humphries MD, Redgrave P. A new framework for cortico-striatal plasticity: behavioural theory meets in vitro data at the reinforcement-action interface. PLoS Biol 2015;13:e1002034. | 미소장 |
40 | Frank MJ. Linking across levels of computation in model-based cognitive neuroscience. In: Forstmann B, Wagenmakers EJ, editors. An introduction to model-based cognitive neuroscience. New York:Springer;2015. p.159-177. | 미소장 |
41 | Chen C, Takahashi T, Nakagawa S, Inoue T, Kusumi I. Reinforcement learning in depression: a review of computational research. Neurosci Biobehav Rev 2015;55:247-267. | 미소장 |
42 | Deserno L, Boehme R, Heinz A, Schlagenhauf F. Reinforcement learning and dopamine in schizophrenia: dimensions of symptoms or specific features of a disease group? Front Psychiatry 2013;4:172. | 미소장 |
43 | Maia TV. Reinforcement learning, conditioning, and the brain: successes and challenges. Cogn Affect Behav Neurosci 2009;9:343-364. | 미소장 |
44 | Eshel N, Bukwich M, Rao V, Hemmelder V, Tian J, Uchida N. Arithmetic and local circuitry underlying dopamine prediction errors. Nature 2015;525:243-246. | 미소장 |
45 | Montague PR, Hyman SE, Cohen JD. Computational roles for dopamine in behavioural control. Nature 2004;431:760-767. | 미소장 |
46 | Moustafa AA, Sherman SJ, Frank MJ. A dopaminergic basis for working memory, learning and attentional shifting in Parkinsonism. Neuropsychologia 2008;46:3144-3156. | 미소장 |
47 | Schultz W, PreuschoffK, Camerer C, Hsu M, Fiorillo CD, Tobler PN, et al. Explicit neural signals reflecting reward uncertainty. Philos Trans R Soc Lond B Biol Sci 2008;363:3801-3811. | 미소장 |
48 | Adams RA, Huys QJ, Roiser JP. Computational psychiatry: towards a mathematically informed understanding of mental illness. J Neurol Neurosurg Psychiatry 2016;87:53-63. | 미소장 |
49 | Murray GK, Corlett PR, Clark L, Pessiglione M, Blackwell AD, Honey G, et al. Substantia nigra/ventral tegmental reward prediction error disruption in psychosis. Mol Psychiatry 2008;13:239, 267-276. | 미소장 |
50 | Corlett PR, Murray GK, Honey GD, Aitken MR, Shanks DR, Robbins TW, et al. Disrupted prediction-error signal in psychosis:evidence for an associative account of delusions. Brain 2007;130(Pt 9):2387-2400. | 미소장 |
51 | Romaniuk L, Honey GD, King JR, Whalley HC, McIntosh AM, Levita L, et al. Midbrain activation during Pavlovian conditioning and delusional symptoms in schizophrenia. Arch Gen Psychiatry 2010;67:1246-1254. | 미소장 |
52 | Schlagenhauf F, Sterzer P, Schmack K, Ballmaier M, Rapp M, Wrase J, et al. Reward feedback alterations in unmedicated schizophrenia patients: relevance for delusions. Biol Psychiatry 2009;65:1032-1039. | 미소장 |
53 | Kapur S. Psychosis as a state of aberrant salience: a framework linking biology, phenomenology, and pharmacology in schizophrenia. Am J Psychiatry 2003;160:13-23. | 미소장 |
54 | Waltz JA, Schweitzer JB, Gold JM, Kurup PK, Ross TJ, Salmeron BJ, et al. Patients with schizophrenia have a reduced neural response to both unpredictable and predictable primary reinforcers. Neuropsychopharmacology 2009;34:1567-1577. | 미소장 |
55 | Gradin VB, Kumar P, Waiter G, Ahearn T, Stickle C, Milders M, et al. Expected value and prediction error abnormalities in depression and schizophrenia. Brain 2011;134(Pt 6):1751-1764. | 미소장 |
56 | Gold JM, Waltz JA, Matveeva TM, Kasanova Z, Strauss GP, Herbener ES, et al. Negative symptoms and the failure to represent the expected reward value of actions: behavioral and computational modeling evidence. Arch Gen Psychiatry 2012;69:129-138. | 미소장 |
57 | Gold JM, Strauss GP, Waltz JA, Robinson BM, Brown JK, Frank MJ. Negative symptoms of schizophrenia are associated with abnormal effort-cost computations. Biol Psychiatry 2013;74:130-136. | 미소장 |
58 | Garbusow M, Schad DJ, Sebold M, Friedel E, Bernhardt N, Koch SP, et al. Pavlovian-to-instrumental transfer effects in the nucleus accumbens relate to relapse in alcohol dependence. Addict Biol 2016;21:719-731. | 미소장 |
59 | Sonuga-Barke EJ. The dual pathway model of AD/HD: an elaboration of neuro-developmental characteristics. Neurosci Biobehav Rev 2003;27:593-604. | 미소장 |
60 | Smith AJ, Becker S, Kapur S. A computational model of the functional role of the ventral-striatal D2 receptor in the expression of previously acquired behaviors. Neural Comput 2005;17:361-395. | 미소장 |
61 | Huys QJ, Pizzagalli DA, Bogdan R, Dayan P. Mapping anhedonia onto reinforcement learning: a behavioural metaanalysis. Biol Mood Anxiety Disord 2013;3:12. | 미소장 |
62 | Yoshida W, Dziobek I, Kliemann D, Heekeren HR, Friston KJ, Dolan RJ. Cooperation and heterogeneity of the autistic mind. J Neurosci 2010;30:8815-8818. | 미소장 |
63 | Kishida KT, Montague PR. Imaging models of valuation during social interaction in humans. Biol Psychiatry 2012;72:93-100. | 미소장 |
64 | Kishida KT, King-Casas B, Montague PR. Neuroeconomic approaches to mental disorders. Neuron 2010;67:543-554. | 미소장 |
65 | Sanfey AG. Social decision-making: insights from game theory and neuroscience. Science 2007;318:598-602. | 미소장 |
66 | Yoshida W, Seymour B, Friston KJ, Dolan RJ. Neural mechanisms of belief inference during cooperative games. J Neurosci 2010;30:10744-10751. | 미소장 |
67 | Moutoussis M, Fearon P, El-Deredy W, Dolan RJ, Friston KJ. Bayesian inferences about the self (and others): a review. Conscious Cogn 2014;25:67-76. | 미소장 |
68 | Mokhtari Hashtjini M, Pirzad Jahromi G, Sadr SS, Khaleghi A, Hatef B, Meftahi GH. Comparison of the effects of deep brain stimulation of the prelimbic cortex and basolateral amygdala for facilitation of extinction process of conditioned fear. Arch Neurosci 2020;7. | 미소장 |
69 | Huys QJM, Dayan P. A Bayesian formulation of behavioral control. Cognition 2009;113:314-328. | 미소장 |
70 | Maia TV. Fear conditioning and social groups: statistics, not genetics. Cogn Sci 2009;33:1232-1251. | 미소장 |
71 | Browning M, Behrens TE, Jocham G, O’Reilly JX, Bishop SJ. Anxious individuals have difficulty learning the causal statistics of aversive environments. Nat Neurosci 2015;18:590-596. | 미소장 |
72 | Fornito A, Zalesky A. Computational approaches to understanding mental dysfunction: progress, challenges, and new frontiers. Biol Psychiatry Cogn Neurosci Neuroimaging 2018;3:728-730. | 미소장 |
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74 | Collins AG, Frank MJ. Opponent actor learning (OpAL): modeling interactive effects of striatal dopamine on reinforcement learning and choice incentive. Psychol Rev 2014;121:337-366. | 미소장 |
75 | Mohammadi MR, Khaleghi A, Nasrabadi AM, Rafieivand S, Begol M, Zarafshan H. EEG classification of ADHD and normal children using non-linear features and neural network. Biomed Eng Lett 2016;6:66-73. | 미소장 |
76 | Khaleghi A, Sheikhani A, Mohammadi MR, Nasrabadi AM, Vand SR, Zarafshan H, et al. EEG classification of adolescents with type I and type II of bipolar disorder. Australas Phys Eng Sci Med 2015;38:551-559. | 미소장 |
77 | Mostafavi SA, Khaleghi A, Mohammadi MR, Akhondzadeh S. Is transcranial direct current stimulation an effective modality in reducing food craving? A systematic review and meta-analysis. Nutr Neurosci 2020;23:55-67. | 미소장 |
78 | Moeini M, Khaleghi A, Mohammadi MR. Characteristics of alpha band frequency in adolescents with bipolar II disorder: a resting-state QEEG study. Iran J Psychiatry 2015;10:8-12. | 미소장 |
79 | Khaleghi A, Birgani PM, Fooladi MF, Mohammadi MR. Applicable features of electroencephalogram for ADHD diagnosis. Res Biomed Eng 2020;36:1-11. | 미소장 |
80 | Mohammadi MR, Khaleghi A. Transsexualism: a different viewpoint to brain changes. Clin Psychopharmacol Neurosci 2018;16:136-143. | 미소장 |
81 | Wiecki TV, Antoniades CA, Stevenson A, Kennard C, Borowsky B, Owen G, et al. Computational cognitive biomarker for early-stage Huntington’s disease. PLoS One 2016;11:e0148409. | 미소장 |
82 | Brodersen KH, Deserno L, Schlagenhauf F, Lin Z, Penny WD, Buhmann JM, et al. Dissecting psychiatric spectrum disorders by generative embedding. Neuroimage Clin 2013;4:98-111. | 미소장 |
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