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Indexing and Retrieval in Multimedia Libraries Through Parametric Texture Modeling using the 2D Wold Decomposition

机译:使用二维Wold分解通过参数纹理建模在多媒体库中建立索引和检索

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摘要

This paper presents a parametric method for indexing and retrieval of multimedia data in digital libraries. %Indexing (labeling) and retrieval %of multimedia data, based on the properties %of the imagery components of the stored data record, are derived. Indexing (labeling) and retrieval of the multimedia data are performed using parametric modeling of the textured segments found in the data imagery components. The estimated parametric models of the textured segments serve as their indices, and hence as indices of the entire image, as well as of the multimedia record which the image is part thereof. To achieve the ability to identify textured image regions and estimate their parameters, a joint segmentation-estimation algorithm that combines the 2-D Wold decomposition based texture model with a Markovian labeling process, is derived. Ordering and indexing of images require a definition of a distance measure between images. Using the framework of the Kullback distance between probability distributions, a new rigorous distance measure between textures is derived. The distance between any two textured image segments is evaluated using their estimated parametric models. The proposed segmentation, distance evaluation, and indexing methods are shown to produce comparable results to those obtained by a human viewer.
机译:本文提出了一种用于数字图书馆中多媒体数据的索引和检索的参数方法。根据存储的数据记录的图像成分的属性,导出多媒体数据的索引(标记)和检索。多媒体数据的索引(标记)和检索使用在数据影像组件中找到的纹理片段的参数化建模来执行。纹理段的估计参数模型用作它们的索引,因此用作整个图像以及作为图像一部分的多媒体记录的索引。为了实现识别纹理图像区域并估计其参数的能力,派生了一种联合分割估计算法,该算法将基于二维Wold分解的纹理模型与Markovian标记过程相结合。图像的排序和索引要求定义图像之间的距离度量。使用概率分布之间的Kullback距离框架,可以得出纹理之间新的严格距离度量。使用任意两个带纹理的图像段的估计参数模型来评估它们之间的距离。所提出的分割,距离评估和索引方法显示出可与人类观众获得的结果相媲美的结果。

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