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Wavelet based dictionaries for dimensionality reduction of ECG signals

机译:基于小波的字典,可降低ECG信号的维数

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Dimensionality reduction of ECG signals is considered within the framework of sparse representation. The approach constructs the signal model by selecting elementary components from a redundant dictionary via a greedy strategy. The proposed wavelet dictionaries are built from the multiresolution scheme, but translating the prototypes within a shorter step than that corresponding to the wavelet basis. The reduced representation of the signal is shown to be suitable for compression at low level distortion. In that regard, compression results are superior to previously reported benchmarks on the MIT-BIH Arrhythmia data set. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在稀疏表示的框架内考虑了ECG信号的降维。该方法通过贪婪策略从冗余字典中选择基本成分来构建信号模型。提出的小波字典是从多分辨率方案构建的,但是在比对应于小波基础的步骤短的步骤内转换原型。信号的减少表示被示出适合于在低水平失真下的压缩。在这方面,压缩结果优于先前在MIT-BIH心律失常数据集上报告的基准。 (C)2019 Elsevier Ltd.保留所有权利。

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