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Suprathreshold image compression based on contrast allocation and global precedence

机译:基于对比度分配和全局优先级的Suprathreshold图像压缩

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Visually lossless image compression algorithms aim to keep the compression-induced distortions below the threshold of visual detection, most-often by exploiting the fact that contrast sensitivity varies with spatial frequency. However, when an image is coded in a visually lossy manner, there is little evidence to suggest that visual quality is preserved by minimizing the compression-induced distortions. This paper presents a visually lossy wavelet image compression algorithm based on contrast allocations and visual global precedence: subbands are quantized such that the distortions in the reconstructed image exhibit specific root-mean squared contrast ratios, and such that edge structure is preserved across scale-space, with a preference for global spatial scales. A model which relates contrast (of the distortions) in the reconstructed image to mean-squared error in the wavelet subbands is derived and presented; this model provides an efficient means of adjusting contrast in the transform domain via traditional quantization techniques, thus allowing the algorithm to be used in a wide variety of coders.
机译:视觉无损图像压缩算法旨在将压缩引起的畸变保持低于视觉检测阈值,最常见的是利用对比度灵敏度随空间频率而变化的事实。然而,当以视觉上有损的方式编码图像时,几乎没有证据表明通过最小化压缩引起的扭曲来保存视觉质量。本文介绍了基于对比度分配和视觉全局优先级的视觉上有损的小波图像压缩算法:量化了子带,使得重建图像中的失真表现出特定的根均值平方对比度,并且使得边缘结构被保留在刻度空间上,偏好于全球空间尺度。导出和呈现与小波子带中的重建图像中的对比度(失真)对比度(失真)与小波子带中的平均误差相关的模型;该模型通过传统的量化技术提供了一种有效的调节变换域中对比度的方法,从而允许算法用于各种编码器。

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