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Related Concept Videos

Sleep Apnea01:21

Sleep Apnea

214
Sleep apnea is a condition where breathing stops intermittently during sleep, often leading to significant health issues. Each episode can last from 10 to 20 seconds or more and is frequently accompanied by a brief arousal from sleep. This disturbance, largely unnoticed by the individual, can lead to severe daytime fatigue. Commonly, individuals seek help after being informed by their partners about loud snoring and noticeable breathing pauses during sleep.
The condition is more prevalent among...
214
Holter Monitor: 24-Hour Monitoring01:23

Holter Monitor: 24-Hour Monitoring

210
Holter monitoring is a continuous electrocardiography (ECG) recording that tracks the heart's electrical activity over an extended period, generally 24 to 48 hours. This noninvasive diagnostic tool detects irregular heart rhythms that may not be captured during a standard ECG performed in a clinical setting.DeviceThe Holter monitor is a portable, small device connected to several electrodes on the patient's chest. These electrodes detect the heart's electrical signals and transmit them to the...
210

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Related Experiment Video

Updated: Aug 30, 2025

Multi-Modal Home Sleep Monitoring in Older Adults
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Robust Method for Screening Sleep Apnea With Single-Lead ECG Using Deep Residual Network: Evaluation With Open

Minsoo Yeo, Hoonsuk Byun, Jiyeon Lee

    IEEE Journal of Biomedical and Health Informatics
    |September 1, 2022
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    Summary

    This study presents a robust method for screening sleep apnea syndrome (SAS) using single-lead electrocardiograms (ECG). The approach accurately detects abnormal breathing and estimates the apnea-hypopnea index (AHI), offering a cost-effective solution.

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    Area of Science:

    • Cardiology
    • Medical Devices
    • Artificial Intelligence in Healthcare

    Background:

    • Sleep apnea syndrome (SAS) diagnosis often requires complex and costly procedures.
    • Electrocardiogram (ECG) signals contain physiological information related to respiratory events.
    • Developing non-invasive and accessible screening tools for SAS is crucial.

    Purpose of the Study:

    • To propose and validate a robust method for screening sleep apnea syndrome (SAS) using a single-lead electrocardiogram (ECG).
    • To develop models for minute-by-minute abnormal breathing detection and apnea-hypopnea index (AHI) estimation.
    • To assess the performance of deep learning models (ResNet18, ResNet34, ResNet50) trained on ECG-derived features.

    Main Methods:

    • Calculation of heartbeat interval and ECG-derived respiration (EDR) from single-lead ECG.
    • Training of ResNet18, ResNet34, and ResNet50 models using heartbeat interval and EDR.
    • Development and evaluation using multiple open datasets and experimental data, including wearable device data.

    Main Results:

    • ResNet18 achieved the highest performance in abnormal breathing detection (Cohen's kappa: 0.57).
    • SAS patient classification (AHI threshold 15) yielded an average Cohen's kappa of 0.71.
    • Method demonstrated robust performance across diverse datasets, with significant improvement (kappa: 0.91) after tuning on wearable device data.

    Conclusions:

    • The proposed single-lead ECG-based method offers a robust and accurate approach for SAS screening.
    • The method shows equivalent performance to existing studies using open datasets, despite not being trained on them.
    • This approach has the potential to reduce development costs for commercial SAS screening software due to its reliance on open datasets and strong generalizability.