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How to Locate the Fz Electrode

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Recording electrical activity from the brain requires a placement system that can be replicated with precision across every head shape, every clinic, and every research session. The Fz electrode is one such coordinate. It sits on the frontal midline, directly over the mid-point of the interhemispheric fissure in the frontal lobe—a location confirmed by imaging studies that map scalp electrodes to the underlying cortical surface.

This specific spot, defined by the International 10-20 System, gives clinicians and researchers a window into mid-frontal brain activity without needing to see through the skull. This article walks through the measurement of those landmarks, the arithmetic of the 20% rule, and the marking procedure that places Fz exactly where it belongs.

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Understanding the FZ Protocol

The term “FZ protocol” can refer to a setup or procedure that uses the Fz scalp position, but it does not name one universally fixed EEG method. The electrode location is only one part of a recording or neurofeedback arrangement. Measurement conventions, references, equipment, and the intended use also shape the protocol. Understanding these distinctions helps prevent a position label from being mistaken for a complete clinical method.

What is the FZ Protocol?

Fz is the standard label for a site along the frontal midline of the scalp in the international 10–20 electrode system. It is one of several named positions used to describe where an electrode is placed during EEG recording. A protocol involving Fz may specify how that site is measured, what other electrodes are used, and how the resulting signals are recorded or interpreted. The label itself does not prescribe a particular assessment or intervention.

In this naming system, “F” indicates a frontal position and “z” indicates the midline. Fz is therefore distinct from nearby sites such as Fpz, which lies farther forward, and Cz, which lies near the central midline. A consistent placement convention supports comparison between recordings, but the electrode position should not be treated as a direct measurement of a single brain function. Scalp EEG reflects electrical activity detected at the surface and is affected by the full recording arrangement.

Why is Electrode Placement Crucial for the FZ Protocol?

A modest shift in electrode location can change which scalp signal is recorded and how it relates to neighboring channels. Standardized placement gives the protocol a reproducible spatial reference, while careful contact helps limit instability and artifacts.

These details matter in both clinical recording and neuroscience, where methods must be described clearly enough for others to understand what was measured. Consistent landmarks matter as much as the site label itself.

Placement is only one source of variation. Reference selection, impedance or contact quality, movement, muscle activity, and recording settings can all affect the observed waveform.

For that reason, an Fz position does not independently establish a diagnosis, and a signal associated with one session cannot be interpreted without its measurement context. A useful account of a protocol makes the location and the surrounding setup explicit.

What Anatomical Landmarks Are Essential for EEG Measurement?

Most technicians begin a 10-20 placement session by locating two bony features: the nasion and the inion.

The nasion is the shallow depression at the bridge of the nose, easily felt between the eyes. The inion is a more pronounced bump at the back of the head—the external occipital protuberance. Both can be palpated without special tools, which is why the system works outside of imaging suites.

A line drawn from the nasion, up and over the scalp, to the inion forms the midline sagittal plane. This imaginary line serves as the primary reference meridian for all midline electrode positions, including Fz, Cz, and Pz. The entire proportional grid derives from the length of this nasion–inion path.

How Do You Measure the Nasion-Inion Distance Correctly?

The first quantitative step is to measure the full arc of this midline. The procedure uses a flexible measuring tape, the kind found in any EEG lab.

One end of the tape is anchored at the nasion. The tape is then run along the scalp’s midline, crossing the top of the head—the vertex—and ending at the inion. The number read at the inion, expressed in centimeters, becomes the 100% distance for all subsequent calculations.

For example, a typical adult measurement might be 32 cm. That value, whatever it is, sets the basis for proportional division. Researchers describe this process as the foundational measurement that underpins the 10-20 System’s claim to consistent scalp–cortex correspondence.

Applying the 20% Rule to Find Fz

The 10-20 System divides the nasion–inion line into segments of 10% and 20%. Moving posteriorly from the nasion, the first 10% mark is the Fpz (frontal pole midline) point. Continue another 10%—so that you are now 20% of the total distance from the nasion—and you arrive at Fz.

In other words, Fz sits at exactly 20% of the nasion–inion arc from the front. Because the vertex electrode Cz is placed at the 50% mark, Fz lies 30% forward of that central crown point.

This proportional rule ensures that a person with a larger head circumference will have Fz located proportionally farther back in absolute distance than someone with a smaller head, but in both cases the electrode ends up over the same relative region of the frontal lobe.

The higher-resolution 10-10 system (an extended nomenclature accepted internationally) does not alter Fz’s coordinate. That system adds intermediate sites between the standard 10-20 positions.

For example, an AFz electrode appears at 10% from the nasion, falling between Fpz and Fz. The same 20% rule holds for Fz; only the density of the full electrode grid increases.

Knowing the 20% rule also gives you the ability to verify placement from the back: Fz is 80% of the nasion–inion distance measured from the inion forward (100% minus 20%). This cross-check is useful when the tape might have shifted or when the nasion is difficult to palpate.

Point

From Nasion

From Inion

Fpz

10%

90%

Fz

20%

80%

Cz

50%

50%

How Do You Mark the Fz Electrode Site on the Scalp?

Once the 20% point is calculated—say, 6.4 cm from the nasion on a 32 cm head—the exact location is marked on the scalp. A non-permanent, skin-safe marker is often used to place a small, visible dot precisely on the midline.

Because the midline is a narrow strip, any lateral drift means the electrode will sit over a different cortical region. To verify, the technician usually re-checks the tape alignment: the mark should fall directly under the tape as it runs along the nasion–inion path.

An additional verification step is to confirm the distance from the inion. If the total nasion–inion length is 32 cm, then the inion-to-Fz measurement should be 25.6 cm (80% of 32 cm). This double-check catches measurement errors that might otherwise go unnoticed.

The mark indicates the exact placement site for the Fz electrode, though the subsequent attachment—whether via conductive paste, a cap system, or a dry electrode holder—falls outside the scope of this location guide.

Account for Individual Cortical Geometry in EEG Measurements

The proportional approach of the 10-20 System is what gives it universality. A 10% increment always refers to the individual’s own head length, not a fixed millimeter value. This relative scaling is the reason EEG records from different subjects can be compared at all.

However, the system rests on the assumption that the scalp landmarks have a consistent relationship to the underlying gyri and sulci. Imaging work has shown that this assumption holds reasonably well for the Fz electrode—it reliably overlies the mid-point of the interhemispheric fissure in the frontal lobe across individuals.

Yet the same work found individual differences. Variations in total brain volume, frontal lobe geometry, and the precise pattern of cortical folding mean that the same scalp coordinate might sit above a slightly different patch of cortex in two different people.

For routine clinical EEG or basic research protocols, these subtle shifts have negligible impact; the 20% rule provides sufficient localization. Where absolute anatomical precision is required—for instance, in source localization studies or pre-surgical mapping—the proportional scalp placement is often augmented with MRI-based confirmation.

In those contexts, Fz serves as a reproducible starting point, not a final statement of millimeter-level cortical geography. Technicians who understand this limitation are better equipped to interpret EEG data within the realistic bounds of the system.

Best Practices for Optimal FZ Protocol Performance

Reliable use of Fz begins with a written placement method that specifies the landmarks and the convention used to locate the site. This reduces ambiguity between operators and across sessions. The label should be recorded as Fz, with neighboring positions such as Fpz and Cz kept distinct in notes and diagrams. Consistency is more useful than an undocumented approximation.

Signal quality depends on more than the scalp coordinate. Contact stability, the electrode configuration, reference choice, movement, and environmental or physiological artifacts can influence what appears in the recording. Checking those factors systematically helps avoid treating every unusual waveform as a meaningful change in brain activity. Any interpretation should remain tied to the montage and acquisition conditions.

Finally, an Fz-based arrangement should be described in terms of its actual purpose and components. Placement alone does not specify a diagnosis, a neurofeedback target, or a treatment plan. For clinical decisions, interpretation belongs within the relevant professional and procedural context; general information about an electrode position cannot replace that assessment.

Why the 20% Rule Keeps EEG Reproducible Across Head Shapes

The Fz electrode's reliability comes from treating each person's own head as the measuring map, not from chasing an exact millimeter mark. By dividing the nasion-to-inion arc into percentages, the 10-20 System turns head size into a variable that stays consistent across people.

The 20% rule places Fz over the same relative frontal midline in every person, which gives clinicians a dependable window into mid-frontal brain activity without needing to see inside the skull. Brain imaging supports this logic: Fz reliably overlies the midpoint of the frontal interhemispheric fissure, though individual brain geometry means the cortex just beneath it can shift slightly.

That limitation matters most when absolute precision is required, such as source localization or pre-surgical mapping, where MRI confirmation can refine the coordinate. For routine EEG and basic research, the proportional method provides enough accuracy to make recordings comparable and clinically useful.

Accurate placement ultimately comes down to four simple actions—finding the nasion and inion, measuring the arc, applying the 20% rule, and marking the midline—because everything downstream in the recording process depends on that initial reference point.

References

  1. Homan, R. W. (1988). The 10-20 electrode system and cerebral location. American Journal of EEG Technology, 28(4), 269-279. https\://doi.org/10.1080/00029238.1988.11080272

  2. Kim, D., JOO, E. Y., TAE, W. S., HAN, S. J., CHO, J. W., SEO, D. W., & HONG, S. B. (2007). Cortical localization of scalp electrodes on three-dimensional brain surface using frameless stereotactic image guidance system. Journal of the Korean Neurological Association, 155-160.

Frequently Asked Questions

What does the Fz electrode measure and where is it located on the scalp?

Fz is a scalp electrode positioned on the frontal midline, directly over the midpoint of the interhemispheric fissure in the frontal lobe. This placement gives clinicians and researchers a window into mid-frontal brain activity without needing to see through the skull.

How does the 10-20 System ensure consistent electrode placement across different people?

The system uses proportional measurements based on an individual’s own head length rather than fixed millimeters, dividing the nasion-to-inion distance into 10% and 20% segments. This relative scaling allows recordings from different subjects to be compared, regardless of overall head size.

What are the key anatomical landmarks for placing the Fz electrode?

The two bony landmarks are the nasion, the shallow depression at the bridge of the nose, and the inion, the bump at the back of the head. A line drawn from nasion over the scalp to inion defines the midline sagittal plane used as the reference for all midline electrodes.

How is the 20% rule applied to find the Fz location?

After measuring the full nasion-to-inion arc, Fz is placed at exactly 20% of that distance from the nasion moving posteriorly. The first 10% mark is Fpz, and continuing another 10% brings you to Fz, which is also 30% forward of the vertex electrode Cz.

Why is proportional measurement important when head sizes vary?

Because the placement is a percentage of the individual’s own nasion-to-inion distance, a larger head will have Fz proportionally farther back in absolute centimeters than a smaller head. In both cases, the electrode ends up over the same relative region of the frontal lobe.

Does the extended 10-10 system change the location of Fz?

No, the 10-10 system adds more intermediate electrode sites but leaves Fz exactly where it is in the 10-20 system. For example, it introduces AFz at 10% from the nasion, between Fpz and Fz, while Fz remains at the 20% mark.

How can you verify the Fz location using the inion?

Fz is also 80% of the nasion-to-inion distance measured from the inion forward, since 100% minus 20% equals 80%. This cross-check helps catch measurement errors if the tape shifted or the nasion is hard to feel.

What does imaging research show about the Fz electrode's relationship to the brain?

Imaging studies confirm that Fz reliably overlies the midpoint of the interhemispheric fissure in the frontal lobe across individuals. However, variations in brain volume, frontal lobe geometry, and cortical folding mean the same scalp point can sit above a slightly different patch of cortex in different people.

When is MRI-based confirmation needed for electrode placement?

MRI confirmation is added when absolute anatomical precision is required, such as in source localization studies or pre-surgical mapping. For routine clinical EEG and basic research, the proportional 20% rule provides sufficient localization, and imaging is not necessary.

What are the four sequential steps to accurately place the Fz electrode?

The steps are: identify the nasion and inion, measure the full nasion-to-inion arc along the scalp, apply the 20% rule to calculate Fz’s distance from the nasion, and mark that spot on the midline. A final verification can check the distance from the inion to confirm the mark is correct.

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Accelerate your analytical EEG timelines with rapid-setup, high-density wireless arrays optimized for flexible field deployment.

Emotiv is a neurotechnology leader helping advance neuroscience research through accessible EEG and brain data tools.

Medical Disclaimer: The information provided on this website is for educational and informational purposes only and is not intended as medical or health advice. This content may contain errors and should not be relied upon to make life-altering health, medical, or lifestyle choices. Always seek the advice of your physician or other qualified health provider with any questions you may have regarding a medical condition or treatment.

Christian Burgos

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