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Minimization of Boundary Artifacts on Scalable Image Compression Using Symmetric-Extended Wavelet Transform

机译:使用对称扩展小波变换最小化缩放图像压缩的边界伪影

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Image compression techniques are routinely applied to conserve storage space and minimize bandwidth utilization in various video and communication applications. Wavelet transform is an efficient approach to reduce spatial redundancies without the annoying blocking artifacts at low bit rates. The underlying signal processing used in wavelet transform is the convolution between the decimated input signal and the wavelet filters. Since image signals are not continuous at the boundaries, problems of coefficient expansion and boundary distortion are faced in the implementation of the filtering on the finite length signal. Circular convolution instead of linear convolution can eliminate coefficient expansion but introduce boundary artifacts, especially when more levels of decompositions are involved to obtain scalable images. Symmetric-extended wavelet transform (SWT) introduced in this paper can greatly reduce boundary artifacts with improved performances in scalable image compression in comparison with the periodic-extended wavelet transform and the JPEG compression.
机译:图像压缩技术是常规应用的,以节省存储空间并最大限度地减少各种视频和通信应用程序中的带宽利用率。小波变换是一种有效的方法,可以减少空间冗余,而无烦人的阻塞伪像以低比特率。小波变换中使用的底层信号处理是抽取的输入信号和小波滤波器之间的卷积。由于图像信号在边界处不连续,因此在有限长度信号上的滤波的实现中面临系数膨胀和边界失真的问题。圆形卷积而不是线性卷积可以消除系数扩展,但引入边界伪像,特别是当涉及更多级别的分解时获得可伸缩图像。本文介绍的对称扩展小波变换(SWT)可以大大减少具有在可伸缩图像压缩中的改进性能的边界伪影,与周期性扩展小波变换和JPEG压缩相比。

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