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An ECG feature extraction method based on GASF and MPRE2D for the detection of congestive heart failure
Juanjuan Yang1, Wenhui Wang2, Caiping Xi3
1Nanjing Institute of Rolling Stock Technology, Nanjing, 210000, Jiangsu, China. 211110302108@stu.just.edu.cn.
Insights
This study introduces a novel method for detecting congestive heart failure (CHF) using electrocardiogram (ECG) images generated by Gramian angular summation field (GASF) and analyzed with two-dimensional multiscale permutation-ratio entropy (MPRE2D). The technique achieves high accuracy in identifying CHF from short ECG recordings.
Area of Science:
- Cardiology
- Biomedical Engineering
- Signal Processing
Background:
- Congestive heart failure (CHF) is a significant cardiovascular disease.
- Electrocardiogram (ECG) signals are crucial for diagnosing heart conditions like CHF.
- Challenges in CHF detection include low amplitude and short duration of ECG signals.
Purpose of the Study:
- To develop an effective method for detecting CHF using ECG signals.
- To address the limitations of traditional ECG analysis for CHF detection.
- To improve the accuracy and efficiency of CHF diagnosis.
Main Methods:
- Preprocessing ECG signals and converting them into images using the Gramian angular summation field (GASF) algorithm.
- Applying two-dimensional multiscale permutation-ratio entropy (MPRE2D) to quantify ECG image complexity and irregularity.
- Extracting MPRE2D features and classifying them using a support vector machine (SVM).
Main Results:
- Achieved high classification accuracy (99.46%), sensitivity (99.36%), specificity (99.63%), and F1-score (99.56%) for CHF detection.
- Demonstrated effective CHF detection using only 2 seconds of ECG signal length.
- Validated the method on normal sinus rhythm and CHF databases.
Conclusions:
- The proposed GASF and MPRE2D-based method offers an effective approach for CHF detection.
- This technique provides valuable insights for clinical assessment and treatment of CHF.
- The findings have significant clinical implications for CHF risk assessment.
Abstract:
Congestive heart failure (CHF) is a cardiovascular disease that poses a serious threat to human health. Electrocardiogram (ECG) signals can be used to detect heart diseases such as CHF. However, the low amplitude and short duration of ECG signals severely affected CHF detection. This paper proposes a CHF detection method based on Gramian angular summation field (GASF) and two-dimensional multiscale permutation-ratio entropy (MPRE2D). First, ECG signals are preprocessed and converted into ECG images using the GASF algorithm. GASF can convert one-dimensional ECG signals into two-dimensional coded images containing important information. Then, the two-dimensional permutation-ratio entropy and MPRE2D algorithms are introduced to measure the irregularity and complexity of ECG images. Finally, the MPRE2D features of the image are extracted and the feature vectors are classified using a support vector machine. The classification accuracy is 99.46%, sensitivity 99.36%, specificity 99.63% and F1-score 99.56% on the normal sinus rhythm database and congestive heart failure database. Computer simulations show that the methods based on GASF and MPRE2D provide an effective method for CHF detection. This method can accurately detect patients with CHF using only 2 s of ECG signals length. It not only provides valuable references for clinical doctors to assess and treat CHF, but also offers clinically significant results for CHF risk assessment.
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