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Significados de wavelet transform em inglês
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Uso de wavelet transform em inglês
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Experimental results demonstrate that the proposed algorithm outperforms the popular fusion algorithm based on wavelettransform.
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Using a cross- wavelettransform we find a significant out-of-phase relationship between human parainfluenza 3 and temperature and dew point.
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Conclusion: This study showed that the wavelettransform could be a useful tool to study the uterine EMG activity.
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Continuous wavelettransform (CWT) analysis is another frequency analysis that can show the temporal stability of a frequency.
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In this paper, we developed and evaluated a robust single-lead electrocardiogram (ECG) delineation system based on the wavelettransform (WT).
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PMID: 29369468 Continuous wavelettransform (CWT) analysis is another frequency analysis that can show the temporal stability of a frequency.
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The methodology operates two rotations on the image data, one local using the wavelettransform and one global using the singular value decomposition.
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Distributed lag nonlinear models, Pearson's correlation coefficient and wavelettransform coherence were employed to appraise the relationship between meteorological factors and COVID-19 cases.
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Conclusions: Discrete wavelettransform allows for an accurate determination of ON and OFF retinal pathways even in ERGs evoked to a short flash.
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In this paper, a deep learning framework for detection and classification of EMG signals for diagnosis of neuromuscular disorders is proposed employing cross wavelettransform.
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The discrimination is based on the extraction of suitable features from the time-frequency representation of the EEG signals through continuous wavelettransform (CWT).
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In this work, a new hybrid algorithm based on the selection of the most informative variables in the continuous wavelettransform (CWT) domain is described.
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The primary outcome was the magnitude of the spectral component in the frequency range between .027 and .073 Hz measured with continuous Morlet wavelettransform.
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Peak profiles are obtained by a preprocessing based on Continuous WaveletTransform (CWT), coupled with a machine learning protocol aimed at avoiding selection bias effects.
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First, the time course of neural oscillations ranging from theta (4.5 Hz) to gamma (42 Hz) frequencies were identified using single-trial continuous wavelettransforms.