Spontaneous brain activity as a source of ideal 1/f noise

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Allegrini, Paolo

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Menicucci, Danilo

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Bedini, Remo

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Fronzoni, Leone

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Gemignani, Angelo

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Grigolini, Paolo

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West, Bruce J

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Paradisi, Paolo

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2011-06-21T17:27:49Z

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2011-06-21T17:27:49Z

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2009

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We study the electroencephalogram (EEG) of 30 closed-eye awake subjects with a technique of analysis recently proposed to detect punctual events signaling rapid transitions between different metastable states. After single-EEG-channel event detection, we study global properties of events simultaneously occurring among two or more electrodes termed coincidences. We convert the coincidences into a diffusion process with three distinct rules that can yield the same mu only in the case where the coincidences are driven by a renewal process. We establish that the time interval between two consecutive renewal events driving the coincidences has a waiting-time distribution with inverse power-law index mu approximate to 2 corresponding to ideal 1/f noise. We argue that this discovery, shared by all subjects of our study, supports the conviction that 1/f noise is an optimal communication channel for complex networks as in art or language and may therefore be the channel through which the brain influences complex processes and is influenced by them.

dc.description.version

Version of Record

dc.identifier.citation

Allegrini,Paolo;Menicucci,Danilo;Bedini,Remo;Fronzoni,Leone;Gemignani,Angelo;Grigolini,Paolo;West,Bruce J.;Paradisi,Paolo. 2009. Spontaneous brain activity as a source of ideal 1/f noise. Physical Review E 80(6): 61914-61914.

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1539-3755

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https://hdl.handle.net/10161/4284

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en_US

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American Physical Society (APS)

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10.1103/PhysRevE.80.061914

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Physical Review E

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1

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f noise

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electroencephalography

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nonstationary time-series

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neuronal avalanches

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anomalous diffusion

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dynamical model

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human language

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dna-sequences

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complexity

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networks

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systems

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eeg

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physics, fluids & plasmas

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physics, mathematical

dc.title

Spontaneous brain activity as a source of ideal 1/f noise

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dc.type

Other article

duke.date.pubdate

2009-12-0

duke.description.issue

6

duke.description.volume

80

pubs.begin-page

61914

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