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Content Based Image Retrieval using Density Distribution and Mean of Binary Patterns of Walsh Transformed Color Images

机译:使用Walsh变换彩色图像的密度分布和二值模式均值的基于内容的图像检索

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This paper introduces a novel idea of Binary Pattern observation of column wise and Row wise Walsh transformed color images for feature vector generation. The density distribution of Sal, Cal components of Binary Pattern and its mean values are considered as two different approaches for the same. The proposed method experimented with and without augmentation of average of zeroth Cal and average of last Sal components in the Feature vector. This paper discusses use of Euclidian distance and sum of absolute difference as similarity measures in each of the approaches as mentioned above to check the retrieval performance. The work is experimented on image database of size 1055 images containing 12 classes. Two new parameters of performance measuring parameters i.e. LIRS and LSRR are introduced apart from precision and recall which are very general.
机译:本文介绍了一种新颖的思想,即对按列和按行Walsh变换的彩色图像进行二进制模式观察,以生成特征向量。 Sal,Bal二元模式的组分及其平均值的密度分布被视为相同的两种不同方法。所提出的方法在特征向量中添加或不添加第零个Cal平均值和最后一个Sal分量平均值的情况下进行了实验。本文讨论了使用欧几里德距离和绝对差之和作为上述每种方法中的相似性度量来检查检索性能。在包含12个类的1055张图像的图像数据库上进行了实验。除了非常通用的精度和召回率外,还引入了性能测量参数的两个新参数,即LIRS和LSRR。

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