1.2. Marking and Trim1.2. Marking and Trim1.2. Marking and Trim1.2. Marking and Trim
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CleverPoint 4 User Manual

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Stressonika - Guide for Working with raw ECG data

20
  • Introduction
  • Chapter 1. General points.
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    • Sector. 1
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  • Chapter 3. Cardio domain: examples
    • Cardio domain: examples
    • 3.1. ECG recording quality
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    • 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
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    • 3.4. Signal Transformations
  • 4. “Frequency Domain” Interface
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  • 5. “Power Domain” Interface
    • 5.1. Purpose
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  • 6. “Coherence” Interface
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  • 7. “Emotional State” Interface
    • 7.1. Purpose
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    • 7.4. Emotion Calculation Method
    • 7.5. Display
    • 7.6. Section Selection
  • 8. “Cardio Domain” Interface
    • 8.1. Purpose
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    • 8.4. Extraction of RR Intervals
    • 8.5. HRV Parameters
    • 8.6. Visualization
    • 8.7. Data Export
  • 9. Conclusion
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    • 9.1. Recommendations for Use
    • 9.2. Additional Resources
    • 9.3. Beginner’s Guide
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  • 1. General Principles of Signal Processing
  • 1.2. Marking and Trim

1.2. Marking and Trim

2 min read

1.2.1. Automatic Artifact Marking #

Purpose: Automatic detection of signal segments with amplitude outliers.

How it works:

  • The signal is divided into 3-second windows.
  • The maximum and minimum are taken for each window.
  • Thresholds are calculated as doubled medians of these extrema:
    quantPl = 2*median(max), quantMn = 2*median(min)
  • Values outside the thresholds are clipped to the threshold values, reducing the impact of rare outliers.
  • Based on these thresholds, the system automatically marks artifact segments (in the Ignore field).
  • Marked segments are shown in yellow on the graph.

Physiological explanation:

The marking procedure is based on the idea of a “typical” amplitude range within 3-second windows: physiologically normal activity usually has a relatively stable amplitude, whereas sharp spikes are more often associated with artifacts. Clipping such spikes reduces their contribution to subsequent calculations while preserving the temporal structure of the signal.

1.2.2. Trim: Removing Marked Segments #

Purpose: Removal of marked (yellow) artifact segments from the signal.

How it works:

  • Removal is performed when the Trim checkbox is enabled.
  • All segments marked as artifacts in the Ignore field are removed from the signal.
  • Time stamps for sections and comments are recalculated to account for the removed segments.
  • Signal time is recalculated as:
    Time = (1:sum(Ignore==0))/Fs

Use case: Used to exclude motion artifacts, blinks, electromagnetic interference, and other distortions.

Physiological explanation:

Artifacts are signals unrelated to the physiological activity of interest. For example:

  • Motion artifacts: When the participant moves their head, the electrodes shift relative to the skin, causing large voltage jumps.
  • Blink artifacts: The eyelid muscles generate electrical potentials during blinking, which are recorded by frontal electrodes.
  • Electromagnetic interference: Electrical devices (50/60 Hz) create background noise.
  • Muscle artifacts: Tension in the neck or facial muscles creates high-frequency oscillations.

Artifact removal is necessary to obtain a “clean” signal that reflects only brain or cardiac activity.



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Updated on 21.03.2026

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1.1. Basic Transformations1.3. CAR (Common Average Reference)
Table of Contents
  • 1.2.1. Automatic Artifact Marking
  • 1.2.2. Trim: Removing Marked Segments

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