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Signal Denoising for DNA Capillary Electrophoresis by Combining Spatially Adaptive Thresholding and Stationary Wavelet Transform

机译:通过组合空间自适应阈值和静止小波变换来对DNA毛细管电泳的信号去噪

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In this work, the spatially adaptive thresholding based on stationary wavelet transform (SWT) was applied to noise removal in DNA capillary electrophoresis signal. The threshold is derived in a Bayesian framework, and the prior used on the wavelet coefficients is the generalized Gaussian distribution (GGD). This threshold is simple and closed-form, and it is adaptive to each subband because it depends on data-driven estimates of the parameters. Using this strategy, the noise on DNA capillary electrophoresis signal could be removed adequately. Experimental results show that this denoising method is effective.
机译:在这项工作中,将基于固定小波变换(SWT)的空间自适应阈值施加到DNA毛细管电泳信号中的噪声去除。阈值衍生在贝叶斯框架中,并且在小波系数上使用的先前使用是广义高斯分布(GGD)。此阈值是简单且闭合的形式,并且它适用于每个子带,因为它取决于参数的数据驱动估计值。使用该策略,可以充分消除DNA毛细管电泳信号的噪声。实验结果表明,这种去噪方法是有效的。

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