A deep learning method for automatic detection of end-diastoles in spectral Doppler spectrograms achieved 97.7% true detections with a mean error of 14 ms after rejecting 1.9% of cases.
Can a deep learning-based method accurately detect end-diastoles in cardiac spectral Doppler spectrograms without an ECG signal?
A deep learning method combining CNN and RNN can accurately detect end-diastole in cardiac spectral Doppler ultrasound, potentially eliminating the need for simultaneous ECG recording.
Electrocardiogram (ECG) is often used together with a spectral Doppler ultrasound to separate heart cycles by determining the end-diastole locations. However, the ECG signal is not always recorded. In such cases, the cardiac cycles can be estimated manually from the ultrasound data retrospectively. We present a deep learning-based method for automatic detection of the end-diastoles in spectral Doppler spectrograms. The method uses a combination of a convolutional neural network (CNN) for extracting features and a recurrent neural network (RNN) for modeling temporal relations. In echocardiography, there are three Doppler spectrogram modalities, continuous wave, pulsed wave, and tissue velocity Doppler. Both the training and test data sets include all three modalities. The model was tested on 643 spectrograms coming from different hospitals than in the training data set. For the purposes described in this work, a valid end-diastole detection is defined as a prediction being closer than 60 ms to the reference value. We will refer to these as true detections. Similarly, a prediction farther away is defined as nonvalid or false detections. The method automatically rejects spectrograms where the detection of an end-diastole has low confidence. When setting the algorithm to reject 1.9%, the method achieved 97.7% true detections with a mean error of 14 ms and had 2.5% false detections on the remaining spectrograms.
Jahren et al. (Sat,) conducted a other in Cardiac spectral Doppler ultrasound (n=643). Deep learning-based method (CNN + RNN) vs. Reference value was evaluated on Valid end-diastole detection (<60 ms from reference). A deep learning method for automatic detection of end-diastoles in spectral Doppler spectrograms achieved 97.7% true detections with a mean error of 14 ms after rejecting 1.9% of cases.
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