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1.

Neurosystems: brain rhythms and cognitive processing.

Cannon J, McCarthy MM, Lee S, Lee J, Börgers C, Whittington MA, Kopell N.

Eur J Neurosci. 2014 Mar;39(5):705-19. doi: 10.1111/ejn.12453. Epub 2013 Dec 13. Review.

PMID:
24329933
2.

Neurophysiological and computational principles of cortical rhythms in cognition.

Wang XJ.

Physiol Rev. 2010 Jul;90(3):1195-268. doi: 10.1152/physrev.00035.2008. Review.

3.

[Correspondence between spectral power and synchronization of the brain rhythms in the norm and cognitive pathology].

Strelets VB, Garakh ZhB, Novototskiĭ-Vlasov VIu, Magomedov RA.

Zh Vyssh Nerv Deiat Im I P Pavlova. 2005 Jul-Aug;55(4):496-504. Russian.

PMID:
16217963
4.

EEG dynamics. Brain processing of sensory and cognitive information.

Turbes CC.

Biomed Sci Instrum. 1992;28:51-8.

PMID:
1643230
5.

Oscillatory brain dynamics, wavelet analysis, and cognition.

Başar E, Demiralp T, Schürmann M, Başar-Eroglu C, Ademoglu A.

Brain Lang. 1999 Jan;66(1):146-83.

PMID:
10080869
6.

Gamma-band responses in the brain: a short review of psychophysiological correlates and functional significance.

Başar-Eroglu C, Strüber D, Schürmann M, Stadler M, Başar E.

Int J Psychophysiol. 1996 Nov;24(1-2):101-12. Review.

PMID:
8978437
7.

Alpha rhythms as physiological and abnormal phenomena.

Niedermeyer E.

Int J Psychophysiol. 1997 Jun;26(1-3):31-49. Review.

PMID:
9202993
8.

Mechanisms and functions of theta rhythms.

Colgin LL.

Annu Rev Neurosci. 2013 Jul 8;36:295-312. doi: 10.1146/annurev-neuro-062012-170330. Epub 2013 May 29. Review.

PMID:
23724998
9.

New insights into rhythmic brain activity from TMS-EEG studies.

Thut G, Miniussi C.

Trends Cogn Sci. 2009 Apr;13(4):182-9. doi: 10.1016/j.tics.2009.01.004. Epub 2009 Mar 13. Review.

PMID:
19286414
10.

Gamma, alpha, delta, and theta oscillations govern cognitive processes.

Başar E, Başar-Eroglu C, Karakaş S, Schürmann M.

Int J Psychophysiol. 2001 Jan;39(2-3):241-8.

PMID:
11163901
11.

The principle of coherence in multi-level brain information processing.

Plankar M, Brežan S, Jerman I.

Prog Biophys Mol Biol. 2013 Jan;111(1):8-29. doi: 10.1016/j.pbiomolbio.2012.08.006. Epub 2012 Aug 17.

PMID:
22986048
12.

Lack of bilateral coherence of mu rhythm.

van Leeuwen WS, Wieneke G, Spoelstra P, Versteeg H.

Electroencephalogr Clin Neurophysiol. 1978 Feb;44(2):140-6.

PMID:
75087
13.

Brain rhythms of language: nouns versus verbs.

Pulvermuller F, Preissl H, Lutzenberger W, Birbaumer N.

Eur J Neurosci. 1996 May;8(5):937-41.

PMID:
8743741
14.

High-frequency brain activity: its possible role in attention, perception and language processing.

Pulvermüller F, Birbaumer N, Lutzenberger W, Mohr B.

Prog Neurobiol. 1997 Aug;52(5):427-45. Review.

PMID:
9304700
15.

Cognitive measure on different profiles.

Spindola M, Carra G, Balbinot A, Zaro MA.

Adv Exp Med Biol. 2010;657:365-78. doi: 10.1007/978-0-387-79100-5_19.

PMID:
20020357
16.

[The characteristics of cortical interactions in high and low verbal creative subjects].

Tarasova IV, Vol'f NV, Razumnikova OM.

Fiziol Cheloveka. 2010 Jan-Feb;36(1):93-9. Russian.

PMID:
20196452
17.

Brain-computer interface signal processing at the Wadsworth Center: mu and sensorimotor beta rhythms.

McFarland DJ, Krusienski DJ, Wolpaw JR.

Prog Brain Res. 2006;159:411-9. Review.

PMID:
17071245
18.

Cognitive architectures as a tool for investigating the role of oscillatory power and coherence in cognition.

van Vugt MK.

Neuroimage. 2014 Jan 15;85 Pt 2:685-93. doi: 10.1016/j.neuroimage.2013.09.076. Epub 2013 Oct 14.

PMID:
24135168
19.

Oscillatory brain states interact with late cognitive components of the somatosensory evoked potential.

Reinacher M, Becker R, Villringer A, Ritter P.

J Neurosci Methods. 2009 Sep 30;183(1):49-56. doi: 10.1016/j.jneumeth.2009.06.036. Epub 2009 Jul 7.

PMID:
19589356
20.

EEG and MEG: relevance to neuroscience.

Lopes da Silva F.

Neuron. 2013 Dec 4;80(5):1112-28. doi: 10.1016/j.neuron.2013.10.017.

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