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Electroencephalography

life science Maturity 9-11

Doctors can see how your brain works.

EEG cap.jpg
EEG cap.jpg
They use small tools on your head. These tools listen to your brain. It helps them keep you healthy. It is very safe. Can you imagine your brain talking?
Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png

43 words

Your brain uses tiny bits of power.

EEG cap.jpg
EEG cap.jpg
Doctors use a tool to listen to it. They put small tools on your head. These tools catch the brain's signals.
Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png
This helps doctors see if your brain is healthy. They can see if you are awake. They can even see if you are relaxed. The tools can find signs of sleep problems too. It is a great way to learn about the brain.

78 words

An EEG is a way to record brain activity.

EEG cap.jpg
EEG cap.jpg
Your brain uses tiny bits of power. This power comes from cells called neurons. Doctors use an EEG to listen to these signals. They place small tools called electrodes on your scalp. These tools catch the electrical signals from the brain.
Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png
Doctors look at the patterns to see how you feel. For example, alpha waves show when you are relaxed. Beta waves show when you are thinking hard.
eeg alpha.svg
eeg alpha.svg
If a person is awake but relaxed, they show alpha waves. If they open their eyes, the alpha waves go away. Other waves, like delta and theta, are for sleep.
eeg delta.svg
eeg delta.svg
If these waves show up while you are awake, it might mean a problem. An EEG is very helpful for finding epilepsy. Epilepsy is a condition that causes seizures. The EEG can see sharp spikes during a seizure. This tool is very fast. It can see changes in just a few milliseconds. This makes it a great tool for science research too.

180 words

An electroencephalogram, or EEG, is a special way to record the brain's electrical activity.

EEG cap.jpg
EEG cap.jpg
Our brains are full of living cells called neurons. These neurons create tiny electrical signals as they work. An EEG picks up these signals to show how the brain is behaving. This tool is very important for doctors and scientists. It helps find health problems and helps researchers study how the mind works.
Electroencephalograph Neurovisor-BMM 40 (close view).jpg
Electroencephalograph Neurovisor-BMM 40 (close view).jpg

To make a recording, doctors place small tools called electrodes on the scalp.

EEG cap.jpg
EEG cap.jpg
They often use a specific pattern called the International 10–20 system to place them. These electrodes act like tiny listeners for the brain's signals. The signals travel from the neurons through the brain tissue and bone. These tissues can act like resistors in an electrical circuit, which might change the signal. Because of this, the EEG mostly shows activity from the parts of the brain closest to the scalp. It cannot easily see deep structures like the thalamus or the brain stem.
Human EEG artefacts.png
Human EEG artefacts.png

Scientists have studied these brain waves for a long time. One of the first human EEG recordings was made by a man named Hans Berger.

1st-eeg.png
1st-eeg.png
HansBerger Univ Jena.jpeg
HansBerger Univ Jena.jpeg
Today, doctors use these recordings to look for different patterns. A healthy brain shows different waves depending on if a person is awake or asleep. For example, alpha waves show up when a person is relaxed.
eeg alpha.svg
eeg alpha.svg
If that person opens their eyes, the alpha waves usually decrease.
Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png
During hard thinking, the brain shows more beta waves.
eeg beta.svg
eeg beta.svg

There are many specific numbers used to describe these brain waves. The frequency of the waves usually stays between 1 and 30 Hz. The strength, or amplitude, stays between 20 and 100 microvolts. Different waves have different names and speeds. Delta waves are very slow, between 0.5 and 4 Hz.

eeg delta.svg
eeg delta.svg
Theta waves move between 4 and 7 Hz.
eeg theta.svg
eeg theta.svg
Beta waves are faster, moving between 13 and 30 Hz.
eeg beta.svg
eeg beta.svg
Doctors use these numbers to help diagnose many things. They can check for epilepsy, sleep disorders, or even brain death.
eeg gamma.svg
eeg gamma.svg

An EEG is a very fast tool compared to other brain scans. It can see changes that happen in just a few milliseconds. This makes it much faster than an MRI or a CT scan for seeing timing. While an MRI is great for seeing the shape of the brain, the EEG is better at seeing the timing of activity. This speed is why scientists use it to study how we think and react to things. It is even used in hospitals to monitor people in comas. This makes the EEG a vital part of modern medicine and science.

463 words

Electroencephalography, commonly known as EEG, is a method used to record the spontaneous electrical activity of the brain.

EEG cap.jpg
EEG cap.jpg
This process produces an electrogram, which is a visual representation of the brain's bio signals. These signals represent the postsynaptic potentials of pyramidal neurons located in the neocortex and allocortex. EEG is a vital tool in both clinical medicine and neuroscience research. It helps doctors diagnose various conditions and allows scientists to study how the brain functions in real time.
Electroencephalograph Neurovisor-BMM 40 (close view).jpg
Electroencephalograph Neurovisor-BMM 40 (close view).jpg

The mechanism of EEG involves detecting voltage fluctuations using electrodes. In a standard scalp EEG, these electrodes are placed along the scalp using the International 10–20 system. The electrical activity originates in neurons within the underlying brain tissue. As these signals travel toward the surface, they must pass through intermediary tissues and bones. These biological materials act similarly to resistors and capacitors in an electrical circuit. Consequently, the recorded value is often distorted by these layers. The signal strength also varies based on the orientation and distance of the neurons to the electrodes. This means the EEG primarily reflects the activity of cortical neurons near the scalp. Deep structures like the thalamus, hippocampus, and brain stem do not contribute directly to a scalp EEG.

Researchers categorize brain activity into specific frequency groups. A healthy human EEG typically shows frequencies between 1 and 30 Hz. The amplitudes, or the strength of the signal, usually vary between 20 and 100 μV. These frequencies are subdivided into four main types of waves. Alpha waves range from 8 to 13 Hz and appear during relaxed wakefulness.

eeg alpha.svg
eeg alpha.svg
Beta waves are faster, ranging from 13 to 30 Hz, and occur during intense mental activity.
eeg beta.svg
eeg beta.svg
Theta waves move between 4 and 7 Hz.
eeg theta.svg
eeg theta.svg
Delta waves are the slowest, ranging from 0.5 to 4 Hz.
eeg delta.svg
eeg delta.svg
If theta or delta waves appear while a person is awake, it may indicate brain dysfunction.

History shows that the ability to record these signals changed how we understand the mind. One of the first human EEG recordings was obtained by Hans Berger.

1st-eeg.png
1st-eeg.png
HansBerger Univ Jena.jpeg
HansBerger Univ Jena.jpeg
Since his early work, the technology has evolved into a sophisticated diagnostic standard. While EEG was once a primary method for diagnosing tumors or strokes, its role has shifted. High-resolution anatomical imaging, such as MRI and CT scans, now handles many of those tasks. However, EEG remains essential because of its unique temporal resolution. It can capture changes in the millisecond range, a speed that MRI, PET, or CT scans cannot match.

In clinical settings, EEG is the gold standard for confirming epilepsy. Doctors look for abnormal discharges like sharp waves, spikes, or spike-and-wave complexes.

Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png
A routine EEG usually lasts 20 to 30 minutes. While the sensitivity of a routine scan is between 29% and 55%, the specificity is very high. This means if an EEG shows these specific abnormal patterns, it almost certainly confirms epilepsy. For more detailed study, patients may stay in an Epilepsy Monitoring Unit (EMU). In an EMU, doctors perform ictal recordings to capture actual seizures. These hospital stays can last several days or even a week.
Human EEG artefacts.png
Human EEG artefacts.png

Beyond epilepsy, EEG is used to monitor many different states of health. It helps diagnose sleep disorders, the depth of anesthesia, and coma. It is also used to evaluate encephalopathies and cerebral hypoxia following cardiac arrest. In intensive care units, it can monitor for non-convulsive seizures. For patients needing higher precision, surgeons may use electrocorticography (ECoG). This involves the surgical placement of electrodes under the dura mater. ECoG provides better spatial resolution and can detect high-frequency components that scalp EEGs miss. This is especially important when determining if a patient needs surgery to treat epilepsy.

Finally, EEG serves as a powerful tool in cognitive science and psychology. Scientists use derivatives of the technique, such as event-related potentials (ERPs). ERPs involve averaging EEG activity that is time-locked to a specific stimulus, like a sound or a light. This allows researchers to see how the brain processes complex information. While some research continues into areas like ADHD and concussion, the EEG remains a fundamental pillar of neuroscience. Its ability to provide a mobile and fast window into the brain's electrical life is unmatched by most other technologies.

721 words
🖼️ Images & Media (13)
File:EEG cap.jpg
EEG cap.jpg
File:Electroencephalograph Neurovisor-BMM 40 (close view).jpg
Electroencephalograph Neurovisor-BMM 40...
File:Human EEG with prominent alpha-rhythm.png
Human EEG with prominent alpha-rhythm.png
File:eeg delta.svg
eeg delta.svg
File:eeg theta.svg
eeg theta.svg
File:eeg alpha.svg
eeg alpha.svg
File:eeg SMR.svg
eeg SMR.svg
File:eeg beta.svg
eeg beta.svg
File:eeg gamma.svg
eeg gamma.svg
File:Human EEG artefacts.png
Human EEG artefacts.png
File:1st-eeg.png
1st-eeg.png
File:HansBerger Univ Jena.jpeg
HansBerger Univ Jena.jpeg

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