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The Maximal Overlap Discrete Wavelet Scattering Transform and Its Application in Classification Tasks

2025-05-23 · Leonardo Fonseca Larrubia, Pedro Alberto Morettin, Chang Chiann

We present the Maximal Overlap Discrete Wavelet Scattering Transform (MODWST), whose construction is inspired by the combination of the Maximal Overlap Discrete Wavelet Transform (MODWT) and the Scattering Wavelet Transform (WST). We also discuss the use of MODWST in classification tasks, evaluating its performance in two applications: stationary signal classification and ECG signal classification. The results demonstrate that MODWST achieved good performance in both applications, positioning itself as a viable alternative to popular methods like Convolutional Neural Networks (CNNs), particularly when the training data set is limited.

📄 PDF Abstract BibTeX arXiv:2506.12039

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Classification

Methods 이 논문이 사용한 방법론

SET Dynamic Sparse Training method where weight mask is updated randomly periodically

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