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Removal of Gaussian noise from stationary image using shift invariant wavelet transform

机译:使用不变变量小波变换去除静止图像中的高斯噪声。

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Discrete wavelet transform (DWT) has gained widespread recognition and popularity in image processing due to its ability of capturing energy of signal in a few energy transform value. As well as it has also ability to underline and represent time-varying spectral properties of many transient and other nonstationary signals. In DWT denoising is done only in detail coefficient, this offer advantage of smoothness and adaption. However DWT has a lack of shift invariance. This shift-variance is a major problem with the use of DWT for transient signal analysis and pattern recognition applications. Denoising of images with the DWT some time also give visual artifacts due to Gibbs phenomena in neighbourhood of discontinuities. In this paper, a shift-invariant analysis scheme is proposed for removing of additive Gaussian noise in stationary image. An investigation has been made on discrete wavelet transform with shift invariant in terms of PSNR and visual performance.
机译:离散小波变换(DWT)由于能够以几个能量变换值捕获信号能量,因此在图像处理中获得了广泛的认可和普及。它也具有强调和表示许多瞬态和其他非平稳信号的时变频谱特性的能力。在DWT中,去噪仅在细节系数上完成,这提供了平滑和自适应的优势。但是,DWT缺乏移位不变性。对于瞬态信号分析和模式识别应用,使用DWT时,这种移位方差是一个主要问题。由于不连续区域附近的吉布斯现象,用DWT对图像进行消噪有时还会产生视觉伪像。本文提出了一种位移不变分析方案,用于去除静止图像中的加性高斯噪声。已经对具有离散不变性的离散小波变换在PSNR和视觉性能方面进行了研究。

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