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Image Retrieval Using Most Similar Highest Priority Principle Based on Fusion of Colour and Texture Features

机译:基于颜色和纹理特征融合的,使用最相似的最高优先级原理进行图像检索

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We propose Content-Based Image Retrieval (CBIR) system using local RGB colour and texture features. Firstly, the image is divided into sub-blocks, and then the local features are extracted. Colour is represented by Colour Histogram (CH) and Colour Moment (CM). Texture is obtained by using Gabor filter (Gab) and Local Binary Pattern (LBP). An integrated matching scheme based on Most Similar Highest Priority (MSHP) principle is used to compare the blocks of query and database image. Since each feature extracted from images just characterizes certain aspect of image content, features fusion are necessary to increase the retrieval performance. We present a novel fusion method based on fusing the distance value for each feature instead of the feature itself to avoid the curse of dimensionality. Experimental results in terms of the precision/recall estimates demonstrate that the performance of the proposed fusion method gives better performance than that when either method is used alone.
机译:我们提出使用本地RGB颜色和纹理特征的基于内容的图像检索(CBIR)系统。首先,将图像划分为子块,然后提取局部特征。颜色由颜色直方图(CH)和颜色矩(CM)表示。通过使用Gabor滤镜(Gab)和局部二进制图案(LBP)获得纹理。基于最相似最高优先级(MSHP)原理的集成匹配方案用于比较查询块和数据库图像。由于从图像中提取的每个特征仅可表征图像内容的某些方面,因此必须进行特征融合以提高检索性能。我们提出了一种新颖的融合方法,该方法基于融合每个特征的距离值而不是特征本身,从而避免了维数的诅咒。就精确度/召回率估计而言,实验结果表明,与单独使用任一方法相比,所提出的融合方法的性能更好。

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