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preprocessing_physics

πŸ«€ ECG Wave Segmentation with Physics-Informed Preprocessing

This repository explores multiple physics-based preprocessing techniquesβ€”Euler Differentiation, Hilbert Transform, and Gauss-Legendre Integrationβ€”to enhance the segmentation of ECG waveforms (P, QRS, and T) using an LSTM model.


πŸ”¬ Overview

Electrocardiogram (ECG) signals contain three primary waveforms:

  • P-wave: low-frequency, low-amplitude
  • QRS-complex: sharp, high-frequency
  • T-wave: smooth, moderate amplitude

Each wave is preprocessed using a tailored mathematical method to match its physical characteristics before being segmented using an LSTM model.


βš™οΈ Preprocessing Methods

Method Description Best for
Euler Differentiation Highlights sharp slope changes QRS-complex
Hilbert Transform Enhances amplitude & phase info (envelope) P & T waves
Gauss-Legendre Smooth integration, retains morphology All segments
High-pass Filtering Removes baseline drift All

πŸ§ͺ Model & Training

  • Architecture: 2-layer LSTM
  • Input: Preprocessed 1D ECG signal
  • Output: Predicted wave labels (P, QRS, T)
  • Evaluation Metrics: Accuracy, Test Loss, Inference Time


Figure: Loss convergence across preprocessing techniques


πŸ•’ Runtime Comparison

Method CPU Time (ms) GPU Memory (MB)
No Preprocessing 40.2 ms 110 MB
Euler 41.5 ms 112 MB
Hilbert 43.0 ms 115 MB
Gauss-Legendre 45.0 ms 120 MB

πŸ“ File Guide

File Description
src/preprocessing.py All signal transformation methods
src/model_lstm.py LSTM-based segmentation model
main.py Run complete pipeline (preprocess β†’ segment β†’ plot)

πŸ“¦ Installation

git clone https://github.com/username/ecg-segmentation-preprocessing.git
cd ecg-segmentation-preprocessing
pip install -r requirements.txt

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ECG physics based XAI

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