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https://www.mathworks.com/help/signal/examples/ecg-classification-using-wavelet-features.html
This example shows how to classify human electrocardiogram (ECG) signals using wavelet-based feature extraction and a support vector machine (SVM) classifier. The problem of signal classification is simplified by transforming the raw ECG signals into a much smaller set of features that serve in aggregate to differentiate different classes.
https://www.mathworks.com/help/stats/support-vector-machine-classification.html
Create and compare support vector machine (SVM) classifiers, and export trained models to make predictions for new data. ... Signal Classification Using Wavelet-Based Features and Support Vector Machines (Wavelet Toolbox) Wavelet Time Scattering Classification of Phonocardiogram Data (Wavelet Toolbox) ... Web browsers do not support MATLAB ...fitcsvm: Train binary support vector machine (SVM) classifier
https://www.researchgate.net/publication/8345770_Wavelet_Support_Vector_Machine
Rank wavelet support vector machine (rank-WSVM) [27, 28] is proposed to apply in the classification of complex disturbances. A new method for the classification of PQ disturbances was proposed by ...
https://de.mathworks.com/help/stats/support-vector-machine-classification.html
Train Support Vector Machines Using Classification Learner App. Create and compare support vector machine (SVM) classifiers, and export trained models to make predictions for new data. Support Vector Machines for Binary Classification. Perform binary classification via SVM using separating hyperplanes and kernel transformations.fitcsvm: Train binary support vector machine (SVM) classifier
https://it.mathworks.com/help/wavelet/machine-learning-and-deep-learning.html?category=machine-learning-and-deep-learning
Wavelet techniques are effective for obtaining data representations or features, which you can use in machine learning and deep learning workflows. Wavelet scattering enables you to produce low-variance data representations, which are invariant to translations on a scale you define and are continuous with respect to deformations.
https://blogs.mathworks.com/headlines/2016/08/23/using-wavelet-transforms-and-machine-learning-to-predict-droughts/
Aug 23, 2016 · Many have used machine learning techniques such as artificial neural networks (ANN) and support vector regression (SVR) to train their models. In addition to machine learning, some researchers are exploring adding wavelet transforms to their models. Hybrid approaches have included wavelet-ANN (WANN) and wavelet-SVR (WSVR) models.
https://kr.mathworks.com/help/wavelet/machine-learning-and-deep-learning.html
Classify human electrocardiogram (ECG) signals using wavelet time scattering and a support vector machine (SVM) classifier. In wavelet scattering, data is propagated through a series of wavelet transforms, nonlinearities, and averaging to produce low-variance representations of time series.scatteringTransform: Wavelet 1-D scattering transform
https://matlab1.com/shop/matlab-code/image-denoising-using-least-squares-support-vector-machine/
Image denoising using least squares support vector machine quantity. Add to cart. ... Wavelet domain image denoising via support vector regression. Electronics Letters 40 (23), 1479–1480. ... Be the first to review “Image denoising using least squares support vector machine” Cancel reply.
https://matlab1.com/shop/matlab-code/wavelet-support-vector-regression-wsvr/
Description. The wavelet transform is a mathematical tool that provides a time–frequency representation of a signal in the time domain . In addition, wavelet analysis can often compress or de-noise a signal and thus, is an effective method for dealing with local discontinuities in a given time series.
https://www.sciencedirect.com/science/article/pii/S0957417407000929
In this study, a novel application of wavelet packet energy–multicass support vector machine (WPE–MSVM) is proposed to perform automatic modulation classification of digital radio signals. In this approach, first, the discrete wavelet packet transforms (DWPTs) of digital modulated radio signal types are …Cited by: 25
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