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A Novel Method for Image and Video Compression Based on Two‑Level DCT with Hexadata Coding

机译:一种基于双级DCT与Hexadata编码的图像和视频压缩的新方法

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摘要

In this paper a novel method for 2D image compression is proposed and demonstrated through high quality reconstruction with compression ratios up to 99%. The proposed novel algorithm is based on a two-level discrete cosine transform (DCT) followed by Hexadata coding and arithmetic coding at compression stage. The novel method consists of four main steps: (1) a two-level DCT is applied to an image to reinforce the low frequency coefficients and increase the number of high frequency coefficients to facilitate the compression process; (2) the Hexadata coding algorithm is applied to each high frequency matrix separately through five different keys to reduce each matrix to 1/6 of their original size; (3) build a probability table of original high-frequency data required in the decoding step; and (4) apply arithmetic coding to compress each of the outputs of steps (2) and (3). At decompression stage, arithmetic decoding and a fast matching search algorithm (FMS-Algorithm) decodes the high frequency coefficients of step (2) using the probability table of step (3). Finally, two level inverse DCT is applied to decode the high frequency coefficients to reconstruct the image. The technique is demonstrated on still images including video streaming from YouTube. The results show that the proposed method yields high compression ratios up to 99% with better perceptual quality of reconstructed images as compared with the popular JPEG method.
机译:本文提出了一种新的2D图像压缩方法,并通过高质量的重建来证明,压缩比率高达99%。所提出的小说算法基于双级离散余弦变换(DCT),然后是在压缩阶段的Hexadata编码和算术编码。该新方法由四个主步骤组成:(1)将两级DCT应用于图像以加强低频系数,并增加高频系数的数量,以便于促进压缩过程; (2)将Hexadata编码算法分别应用于每个高频矩阵,通过五个不同的键将每个矩阵减少到其原始尺寸的1/6; (3)构建解码步骤中所需的原始高频数据的概率表; (4)应用算术编码以压缩步骤(2)和(3)的每个输出。在解压缩阶段,算术解码和快速匹配搜索算法(FMS算法)使用步骤(3)的概率表来解码步骤(2)的高频系数。最后,应用两个级别的逆DCT来解码高频系数以重建图像。该技术在包括来自YouTube的视频流的静止图像上进行了演示。结果表明,与流行的JPEG方法相比,该方法产生高达99%的高压压缩比率高达99%,具有更好的重建图像的质量。

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