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electroencephalography
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Electroencephalography (EEG) is a method to record an electrogram of the spontaneous electrical activity of the brain. The bio signals detected by EEG have been shown to represent the postsynaptic potentials of pyramidal neurons in the neocortex and allocortex. It is typically non-invasive, with the EEG electrodes placed along the scalp (commonly called "scalp EEG") using the International 10–20 system, or variations of it. Electrocorticography, involving surgical placement of electrodes, is sometimes called "intracranial EEG". EEG is widely used both as a clinical diagnostic tool, particularl
Electroencephalography (EEG) is a technique that records the electrical activity of the brain by placing electrodes on the scalp to detect signals from brain cells called pyramidal neurons. It is widely used in clinical settings as a diagnostic tool because it is typically non-invasive and can provide valuable information about brain function.
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Key facts
- Medical intervention.image
- Spike-waves.png
- Medical intervention.caption
- Epileptic spike and wave discharges monitored by EEG
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Research
201,337 papers- [Electroencephalography. Guidelines].Zhurnal nevrologii i psikhiatrii imeni S.S. Korsakova · 2026DOI: 10.17116/jnevro202612602213
- Electroencephalography; review.The American journal of psychiatry · 1952LIBERSON WTDOI: 10.1176/ajp.108.7.508
- Electroencephalography: maturing gracefully.Practical neurology · 2009Chancellor ADOI: 10.1136/jnnp.2009.176586
- Electroencephalography 60 years later.Recenti progressi in medicina · 1991Kugler J
- Electroencephalography.The American journal of psychiatry · 1946GIBBS FADOI: 10.1176/ajp.102.4.527
- ELECTROENCEPHALOGRAPHY.British medical journal · 1952
- Electroencephalography.Progress in neurology and psychiatry · 1946JASPER HH, KERSHMAN J
- Electroencephalography.The American journal of psychiatry · 1963LIBERSON WTDOI: 10.1176/ajp.119.7.607
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Wikidata facts
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- Electroencephalogram
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- Electroencephalography
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- ЕЕГ
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~74 min read
Article
37 sectionsContents
- Uses
- Epilepsy
- Epilepsy Monitoring Unit (EMU)
- Other brain disorders
- Intensive Care Unit (ICU)
- Home ambulatory EEG
- Research use
- Advantages
- Disadvantages
- With other neuroimaging techniques
- Mechanisms
- Method
- Dry EEG electrodes
- Limitations
- EEG's benefits over fMRI, fNIRS, fUS and PET
- EEG vis-à-vis MEG
- Normal activity
- Comparison of EEG bands
- Wave patterns
- Artifacts
- Artifact removal
- Physiological artifacts
- Ocular artifacts
- Muscular artifacts
- Cardiac artifacts
- Other physiological artifacts
- Environmental artifacts
- Abnormal activity
- Remote communication
- EEG diagnostics
- Economics
- Future research
- History
- See also
- References
- Further reading
- External links
Electroencephalography (EEG) is a method to record an electrogram of the spontaneous electrical activity of the brain. The bio signals detected by EEG have been shown to represent the postsynaptic potentials of pyramidal neurons in the neocortex and allocortex. It is typically non-invasive, with the EEG electrodes placed along the scalp (commonly called "scalp EEG") using the International 10–20 system, or variations of it. Electrocorticography, involving surgical placement of electrodes, is sometimes called "intracranial EEG". EEG is widely used both as a clinical diagnostic tool, particularly in epilepsy, and as a research tool in neuroscience. Clinical interpretation of EEG recordings is performed by visual inspection of the tracing, which is the standard method. Quantitative EEG analysis may be used as an adjunct in specific clinical settings. Visual interpretation of EEG is subject to inter-rater and intra-rater variability.
Voltage fluctuations measured by the EEG bio amplifier and electrodes allow the evaluation of normal brain activity. As the electrical activity monitored by EEG originates in neurons in the underlying brain tissue, the recordings made by the electrodes on the surface of the scalp vary in accordance with their orientation and distance to the source of the activity. Furthermore, the value recorded is distorted by intermediary tissues and bones, which act in a manner akin to resistors and capacitors in an electrical circuit. This means that not all neurons will contribute equally to an EEG signal, with an EEG predominately reflecting the activity of cortical neurons near the electrodes on the scalp. Deep structures within the brain further away from the electrodes will not contribute directly to an EEG; these include the base of the cortical gyrus, medial walls of the major lobes, hippocampus, thalamus, and brain stem.
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