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A new algorithm for automatic Rumex obtusifolius detection in digital images using colour and texture features and the influence of image resolution.

机译:利用颜色和纹理特征以及图像分辨率的影响,在数字图像中自动检测钝齿百里香的新算法。

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摘要

In Gebhardt et al. (2006) an object-oriented image classification algorithm was introduced for detecting Rumex obtusifolius (RUMOB) and other weeds in mixed grassland swards, based on shape, colour and texture features. This paper describes a new algorithm that improves classification accuracy. The leaves of the typical grassland weeds (RUMOB, Taraxacum officinale, Plantago major) and other homogeneous regions were segmented automatically in digital colour images using local homogeneity and morphological operations. Additional texture and colour features were identified that contribute to the differentiation between grassland weeds using a stepwise discriminant analysis. Maximum-likelihood classification was performed on the variables retained after discriminant analysis. Classification accuracy was improved by up to 83% and Rumex detection rates of 93% were achieved. The effect of image resolution on classification results was investigated. The eight million pixel images were upscaled in six stages to create images with decreasing pixel resolution. Rumex detection rates of over 90% were obtained at almost all resolutions, and there was only moderate misclassification of other objects to RUMOB. Image processing time ranged from 45 s for the full resolution images to 2.5 s for the lowest resolution ones.
机译:在Gebhardt等人中。 (2006)引入了一种面向对象的图像分类算法,该算法基于形状,颜色和纹理特征,检测混合草地草地中的百里香(RUMOB)和其他杂草。本文介绍了一种提高分类精度的新算法。使用局部均一性和形态学运算,将数字化彩色图像中的典型草原杂草(RUMOB,蒲公英,车前草)的叶子和其他同质区域自动分割。使用逐步判别分析确定了有助于草地杂草之间区分的其他纹理和颜色特征。对判别分析后保留的变量进行最大似然分类。分类精度提高了83%,Rumex的检出率达到了93%。研究了图像分辨率对分类结果的影响。 800万像素的图像按六个阶段进行了放大,以创建像素分辨率降低的图像。在几乎所有分辨率下,Rumex的检出率均超过90%,并且仅将其他对象归类为RUMOB。图像处理时间从全分辨率图像的45秒到最低分辨率图像的2.5秒不等。

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