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本文讨论了一种用于有损压缩的量化方法,称为贪婪感知编码,其中量化器使用感知模型来确定媒体作品可以被扭曲的数量,然后贪婪地试图找到将随后的无损编码器输出的比特数最小化的失真。这种方法的主要优点是解码器不需要知道压缩过程中使用的任何失真参数,例如量化步长或感知模型参数。因此,感知模型可以任意复杂。由于贪婪感知编码改变了要编码的图像值的分布,因此对于未失真图像的最佳无损编码并不是在这种情况下使用的最佳编码。本文提出了一种方法来设计用于贪婪感知编码上下文的简单代码,并利用这些思想实现了一个初步的压缩系统
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Greedy perceptual coding
This paper discusses an approach to quantization for lossy compression, termed greedy perceptual coding, in which the quantizer uses a perceptual model to determine the amount by which a work of media can be distorted, and then greedily tries to find the distortion that minimizes the number of bits that will be output by a subsequent lossless coder. The chief advantage of this approach is that the decoder does not need to know any distortion parameters used during compression, such as quantization step sizes or perceptual model parameters. As a result, the perceptual model can be arbitrarily complex. Since greedy perceptual coding changes the distribution of image values to be encoded, the best lossless codes for undistorted images are not the best to use in this context. A method is presented here for designing simple codes to use in the greedy-perceptual-coding context, and a preliminary compression system is implemented using these ideas
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