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Flower image retrieval method based on ROI feature

机译:基于ROI特征的花卉图像检索方法

摘要

Flower image retrieval is a very important step for computer-aided plant species recognition. We propose an efficient segmentation method based on color clustering and domain knowledge to extract flower regions from flower images. For flower retrieval, we use the color histogram of a flower region to characterize the color features of flower and two shape-based features sets, Centroid-Contour Distance (CCD) and Angle Code Histogram (ACH), to characterize the shape features of a flower contour. Experimental results show that our flower region extraction method based on color clustering and domain knowledge can produce accurate flower regions. Flower retrieval results on a database of 885 flower images collected from 14 plant species show that our Region-of-Interest (ROI) based retrieval approach using both color and shape features can perform better than a method based on the global color histogram proposed by Swain and Ballard (1991) and a method based on domain knowledge-driven segmentation and color names proposed by Das et al. (1999).
机译:花卉图像检索是计算机辅助植物物种识别的重要步骤。我们提出了一种基于颜色聚类和领域知识的有效分割方法,用于从花朵图像中提取花朵区域。对于花朵检索,我们使用花朵区域的颜色直方图来表征花朵的颜色特征,并使用两个基于形状的特征集质心轮廓距离(CCD)和角度代码直方图(ACH)来表征花朵的形状特征。花轮廓。实验结果表明,基于颜色聚类和领域知识的花朵区域提取方法可以产生准确的花朵区域。在从14种植物中收集的885张花朵图像的数据库上的花朵检索结果表明,我们的基于兴趣区域(ROI)的同时使用颜色和形状特征的检索方法的性能要优于Swain提出的基于全局颜色直方图的方法和Ballard(1991)以及Das等人提出的基于领域知识驱动的分割和颜色名称的方法。 (1999)。

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