1.3. CAR (Common Average Reference)1.3. CAR (Common Average Reference)1.3. CAR (Common Average Reference)1.3. CAR (Common Average Reference)
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CleverPoint 4 User Manual

16
  • Introduction
    • Customer Support
    • Regulatory Compliance
    • Warranty and Copyright
  • Product Information
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Stressonika - Guide for Working with raw ECG data

20
  • Introduction
  • Chapter 1. General points.
    • General points
  • Chapter 2. Cardio domain
    • Cardio domain
    • Sector. 1
    • Sector. 2
    • Sector. 3
    • Sector 4
    • Sector 5
    • Sector 6
    • Sector 7
    • Sector 8
  • Chapter 3. Cardio domain: examples
    • Cardio domain: examples
    • 3.1. ECG recording quality
    • 3.2. Preparing the “Cardio domain” page for consultation
    • 3.3 Viewing the “Cardio domain” page during consultation (Example 1)
    • 3.4 . Viewing the “Cardio domain” page during consultation (Example 2)
    • 3.5. Viewing the “Cardio domain” page during consultation (Example 3)
    • 3.6 . Viewing the “Cardio domain” page during consultation (Example 4)
    • 3.7. Viewing the “Cardio domain” page during consultation (Example 5)
    • 3.8. The “Cardio domain” page. Conclusion.

CleverPoint View Data v2.15 User Guide

55
  • Introduction
    • Introduction
  • 0. Fundamentals of Electrophysiology for Beginners
    • 0.1. What Are Physiological Signals?
    • 0.2. Autonomic Nervous System (ANS)
    • 0.3. Emotions and the Brain
    • 0.4. Electrodes and Their Placement in the CleverPoint Setup
  • 1. General Principles of Signal Processing
    • 1.1. Basic Transformations
    • 1.2. Marking and Trim
    • 1.3. CAR (Common Average Reference)
    • 1.4. Denoise (Blink Artifact Suppression)
    • 1.5. Normalize
    • 1.6. IMF (Empirical Mode Decomposition)
    • 1.7. Filtering
    • 1.8. Power vs Amplitude
    • 1.9. Epoch
  • 2. “Summary” Interface
    • 2.1. Purpose
    • 2.2. Controls
    • 2.3. Graphs
    • 2.4. Data Export
  • 3. “Time Domain” Interface
    • 3.1. Purpose
    • 3.2. Controls
    • 3.3. Signal Display
    • 3.4. Signal Transformations
  • 4. “Frequency Domain” Interface
    • 4.1. Purpose
    • 4.2. Interface Structure
    • 4.3. Controls
    • 4.4. Spectral Analysis Methods
    • 4.5. Channel Correlation
    • 4.6. Time Series
  • 5. “Power Domain” Interface
    • 5.1. Purpose
    • 5.2. “Power by sections” Mode
    • 5.3. “Between-channel interactions” Mode
    • 5.4. Frequency-Band Graphs
  • 6. “Coherence” Interface
    • 6.1. Purpose
    • 6.2. Controls
    • 6.3. Coherence Calculation Method
    • 6.4. Display
    • 6.5. Interpretation
    • 6.6. Use in Research
  • 7. “Emotional State” Interface
    • 7.1. Purpose
    • 7.2. Interface Structure
    • 7.3. Controls
    • 7.4. Emotion Calculation Method
    • 7.5. Display
    • 7.6. Section Selection
  • 8. “Cardio Domain” Interface
    • 8.1. Purpose
    • 8.2. Interface Structure
    • 8.3. Controls
    • 8.4. Extraction of RR Intervals
    • 8.5. HRV Parameters
    • 8.6. Visualization
    • 8.7. Data Export
  • 9. Conclusion
    • Conclusion
    • 9.1. Recommendations for Use
    • 9.2. Additional Resources
    • 9.3. Beginner’s Guide
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  • 1. General Principles of Signal Processing
  • 1.3. CAR (Common Average Reference)

1.3. CAR (Common Average Reference)

1 min read

Purpose: Removal of common artifacts present in all channels.

Mathematical formula:

avgElectrodes = (F8 + AF4 + AF3 + F7) / 4
for each channel i: signal_i = signal_i - avgElectrodes

How it works:

  • The average value of the first four EEG electrodes (F8, AF4, AF3, F7) is calculated.
  • This average value is subtracted from each channel.
  • Components common to all channels are removed (for example, line noise and eye movements).

Use case: A standard EEG re-referencing method used to reduce the influence of common artifacts.

Physiological explanation:

EEG electrodes record the potential difference between an active electrode and a reference electrode. The problem is that the reference electrode itself (in the typical CleverPoint setup, usually at the center of the forehead or on the earlobe) may contain its own activity or artifacts.

CAR solves this problem:

  • Instead of a single reference electrode, the average of all electrodes is used.
  • This creates a “virtual” reference that reflects overall activity.
  • Components common to all electrodes (line noise, eye movements, general artifacts) are automatically subtracted.
  • Only the local activity of each electrode remains.

Analogy: Imagine measuring mountain heights relative to sea level. If sea level itself fluctuates, all measurements become distorted. CAR is like using the average level of all points for more accurate measurements.

Updated on 21.03.2026

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1.2. Marking and Trim1.4. Denoise (Blink Artifact Suppression)

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