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Robust plant recognition using Graph cut based flower segmentation and PHOG based feature extraction

机译:使用基于图割的花卉分割和基于PHOG的特征提取进行稳健的植物识别

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摘要

This paper proposes an efficient computer-aided plant recognition method based on plant flower images using shape and texture features intended mainly for medical industry, botanical gardening and cosmetic industry. The target flower is segmented from the complex background using Graph cut segmentation. Shape and texture features are extracted for the segmented image. In the shape domain, a feature descriptor is developed using Pyramidal Histogram of Oriented Gradients (PHOG) that represents the image shape. It captures the distribution of intensity gradients or edge directions. Then in the texture domain, the feature descriptor is developed using Pyramidal Local Binary Pattern (PLBP). The relevant images are retrieved from the database by matching the concatenated histogram of the PHOG and PLBP feature descriptors for the given input image. Results on a database of 200 sample images belonging to different types of plants show an increased efficiency of 96%.
机译:本文提出了一种有效的计算机辅助植物识别方法,该方法基于具有形状和纹理特征的植物花朵图像,主要用于医疗行业,植物园艺和化妆品行业。使用图割分割从复杂背景分割目标花。提取分割图像的形状和纹理特征。在形状域中,使用表示图像形状的定向渐变金字塔直方图(PHOG)开发了特征描述符。它捕获强度梯度或边缘方向的分布。然后,在纹理域中,使用金字塔形局部二进制模式(PLBP)开发特征描述符。通过匹配给定输入图像的PHOG和PLBP特征描述符的串联直方图,可以从数据库中检索相关图像。来自属于不同类型植物的200个样本图像的数据库结果显示,效率提高了96%。

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