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Fast adaptive wavelet packet image compression

机译:快速自适应小波包图像压缩

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Wavelets are ill-suited to represent oscillatory patterns: rapid variations of intensity can only be described by the small scale wavelet coefficients, which are often quantized to zero, even at high bit rates. Our goal is to provide a fast numerical implementation of the best wavelet packet algorithm in order to demonstrate that an advantage can be gained by constructing a basis adapted to a target image. Emphasis is placed on developing algorithms that are computationally efficient. We developed a new fast two-dimensional (2-D) convolution decimation algorithm with factorized nonseparable 2-D filters. The algorithm is four times faster than a standard convolution-decimation. An extensive evaluation of the algorithm was performed on a large class of textured images. Because of its ability to reproduce textures so well, the wavelet packet coder significantly out performs one of the best wavelet coder on images such as Barbara and fingerprints, both visually and in term of PSNR.
机译:小波不适合表示振荡模式:强度的快速变化只能用小比例的小波系数来描述,即使在高比特率下,小波系数通常也被量化为零。我们的目标是提供最佳小波包算法的快速数值实现,以证明可以通过构建适合目标图像的基础来获得优势。重点放在开发计算效率高的算法上。我们开发了一种新的具有分解的不可分二维滤波器的快速二维(2-D)卷积抽取算法。该算法比标准卷积抽取快四倍。在一大类纹理图像上对该算法进行了广泛的评估。由于其能够很好地再现纹理的能力,小波包编码器无论在视觉上还是在PSNR方面都对图像(如Barbara和指纹)表现出最好的小波编码器之一。

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