A comparative study of image correlation models for directional two-dimensional sources

Shuyuan Zhu, B. Zeng
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Abstract

The non-separable Karhunen-Loève transform (KLT) has been proven to be optimal for coding a directional 2-D source in which the dominant directional information is neither horizontal nor vertical. However, the KLT depends on the image data, and it is difficult to apply it in a practical image/video coding application. In order to solve this problem, it is necessary to build an image correlation model, and this model needs to adapt to the directional information so as to facilitate the design of 2-D non-separable transforms. In this paper, we compare two models that have been used commonly in practice: the absolute-distance model and the Euclidean-distance model. To this end, theoretical analysis and experimental study are carried out based on these two models, and the results show that the Euclidean-distance model consistently performs better than the absolute-distance model.
定向二维源图像相关模型的比较研究
不可分karhunen - lo变换(KLT)已被证明是最优编码的方向二维源,其中主要方向信息既不是水平也不是垂直。然而,KLT依赖于图像数据,很难在实际的图像/视频编码应用中应用。为了解决这一问题,需要建立图像相关模型,该模型需要适应方向信息,以便于二维不可分变换的设计。本文比较了实际中常用的两种模型:绝对距离模型和欧几里得距离模型。为此,基于这两种模型进行了理论分析和实验研究,结果表明欧几里得距离模型始终优于绝对距离模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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