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首页> 外文期刊>Recent Patents on Engineering >Object-Oriented Land Cover Image Classification System
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Object-Oriented Land Cover Image Classification System

机译:面向对象的土地覆被图像分类系统

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摘要

In order to develop a new object-oriented image classification method with fuzzy support vector machines for land cover, an effective fuzzy membership as a function of fuzzy nearness is used for reducing the effect of outliers in sample sets. Firstly, according to the spatial and spectral characteristics of different targets on rectified image, the number of objects was automatically determined by using mean shift algorithm, in which local objects were picked up with arbitrary shapes and unique mode labeling. Then, a comparison to other object-oriented methods, which were standard support vector machines (SVM) and K nearest neighbor (KNN), without such pre-processing was successively validated. Finally, the comparison was also made between the traditional pixel-based algorithm and the proposed approach. A high precision object-oriented recognition system is established for remote sensing images. Experimental results indicate the proposed method is much more accurate than those traditional pixel-based algorithms and object-oriented algorithms without pre-processing in the study region.
机译:为了用模糊支持向量机开发一种新的面向对象的图像分类方法,将有效的模糊隶属度作为模糊接近度的函数,以减少样本集中离群值的影响。首先,根据校正后图像上不同目标的空间和光谱特性,采用均值平移算法自动确定物体的数量,该方法利用任意形状和独特的模式标记来拾取局部物体。然后,与其他面向对象的方法(标准支持向量机(SVM)和K最近邻(KNN))进行了比较,无需进行此类预处理。最后,还对传统的基于像素的算法与所提出的方法进行了比较。建立了一种用于遥感图像的高精度面向对象识别系统。实验结果表明,与传统的基于像素的算法和面向对象的算法相比,该方法在研究区域内无需进行预处理即可更加准确。

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