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Association Rule Based Mining Approach for Building and Querying Map Image Databases using Correlation Analysis

机译:基于关联分析的地图图像数据库建立和查询的关联规则挖掘方法

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摘要

Estimating geographic information from an image is an excellent, difficult high-level computer vision problem whose time has come. The emergence of vast amounts of geographically calibrated image data is a great reason for computer vision to start looking globally on the scale of the entire planet. In this paper, we propose a correlated association rule based framework for querying an image database The analysis is based on geographic locations from a single image using a purely data driven feature extraction approach. We apply a specific set of traditional data mining techniques such as association to the non traditional domain of image datasets. Image Features are selected based on the position of the image objects using color histograms approach and Line features. Correlation analysis is applied on image datasets using association rule. A query model based on Query by Example (QBE) is proposed. And we improve the technique further by using association rule based query mining.
机译:从图像估计地理信息是一个非常困难的高级计算机视觉问题,其时机已到。大量经过地理校准的图像数据的出现是计算机视觉开始在整个星球范围内进行全局查找的重要原因。在本文中,我们提出了一种用于查询图像数据库的基于关联规则的相关框架。该分析基于使用纯数据驱动的特征提取方法从单个图像中提取的地理位置。我们将一组特定的传统数据挖掘技术(例如关联)应用于图像数据集的非传统领域。使用颜色直方图方法和线特征​​根据图像对象的位置选择图像特征。使用关联规则将关联分析应用于图像数据集。提出了一种基于实例查询(QBE)的查询模型。并且我们通过使用基于关联规则的查询挖掘来进一步改进该技术。

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