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Signal denoising based on non-local similarity and wavelet transform

机译:基于非局部相似性和小波变换的信号去噪

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A novel signal denoising method combining translation invariant (TI) wavelet transform with non-local signal similarities is developed. Signal blocks with similar structures are assembled together to build up groups with strong correlations, and then the translation invariant wavelet transform is applied on these groups to produce, in an enhanced sparsity manner, the transformed coefficients, these coefficients are hard-thresholded and inverse transformed back into their denoised versions; finally these denoised blocks are aggregated together to get the final estimate of the true signal. Experimental results confirm that the proposed method can achieve certain improvements in denoising performance compared with the traditional translation invariant wavelet methods.
机译:开发了一种新的信号去噪方法,形成了与非局部信号相似性的转换不变(TI)小波变换。具有类似结构的信号块被组装在一起,以构建具有强相关的基团,然后在这些组上施加转换不变小波变换以以增强的稀疏性方式产生变换的系数,这些系数是硬阈值的并且逆变换回到他们的去噪版本;最后,这些去除块被聚合在一起,以获得真实信号的最终估计。实验结果证实,与传统的翻译不变小波方法相比,该方法可以实现对去噪的某些改进。

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