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Embedded image coding using zerotrees of wavelet coefficients

机译:使用小波系数零树的嵌入式图像编码

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摘要

The embedded zerotree wavelet algorithm (EZW) is a simple, yet remarkably effective, image compression algorithm, having the property that the bits in the bit stream are generated in order of importance, yielding a fully embedded code. The embedded code represents a sequence of binary decisions that distinguish an image from the "null" image. Using an embedded coding algorithm, an encoder can terminate the encoding at any point thereby allowing a target rate or target distortion metric to be met exactly. Also, given a bit stream, the decoder can cease decoding at any point in the bit stream and still produce exactly the same image that would have been encoded at the bit rate corresponding to the truncated bit stream. In addition to producing a fully embedded bit stream, the EZW consistently produces compression results that are competitive with virtually all known compression algorithms on standard test images. Yet this performance is achieved with a technique that requires absolutely no training, no pre-stored tables or codebooks, and requires no prior knowledge of the image source. The EZW algorithm is based on four key concepts: (1) a discrete wavelet transform or hierarchical subband decomposition, (2) prediction of the absence of significant information across scales by exploiting the self-similarity inherent in images, (3) entropy-coded successive-approximation quantization, and (4) universal lossless data compression which is achieved via adaptive arithmetic coding.
机译:嵌入式零树小波算法(EZW)是一种简单但非常有效的图像压缩算法,其特性是按重要性顺序生成位流中的位,从而产生完全嵌入的代码。嵌入式代码表示将图像与“空”图像区分开的一系列二进制决策。使用嵌入式编码算法,编码器可以在任何点终止编码,从而允许精确地满足目标速率或目标失真度量。同样,在给定了比特流的情况下,解码器可以在比特流中的任何一点处停止解码,并且仍会产生完全相同的图像,该图像将以对应于截短的比特流的比特率进行编码。 EZW除了产生完全嵌入的比特流外,还始终产生与标准测试图像上几乎所有已知压缩算法相比都具有竞争力的压缩结果。然而,这种性能是通过绝对不需要培训,不需要预先存储的表或密码本,并且不需要图像源的先验知识的技术来实现的。 EZW算法基于四个关键概念:(1)离散小波变换或分层子带分解;(2)通过利用图像固有的自相似性,跨尺度预测缺少重要信息;(3)熵编码逐次逼近量化,以及(4)通过自适应算术编码实现的通用无损数据压缩。

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