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Satellite Image Classification for Detecting Unused Landscape using CNN

机译:利用CNN检测未使用景观的卫星图像分类

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As the landscapes changes day by day it leads to the increasing use of unused lands, by which unused lands can be used for various purposes like agriculture, developing city infrastructure and many more. This paper helps in automating the process of detecting the unused land space. In this work, a system for satellite image processing that detects unused land is proposed. Here remote sensing earth images are taken as the dataset where the pre-processing step includes converting image into greyscale image, compression and noise removal. Segmentation is done to partition the region of used and unused lands. Feature extraction is done here using local binary feature extraction in-order to identify edge, flat and corner surfaces. As the mentioned various algorithm is used in classification and labeling of remote sensing earth images. CNN algorithm is also used for classification and labeling of classification is done automatically by the use of CNN algorithm. Random forest is used to segregate two landscapes as used and unused land which gives accuracy better than the existing systems.
机译:随着景观的日新月异,导致未使用土地的使用增加,未使用土地可用于各种目的,例如农业,发展城市基础设施等等。本文有助于自动化检测未使用的土地空间的过程。在这项工作中,提出了一种用于卫星图像处理的系统,该系统可以检测未使用的土地。这里将遥感地球图像作为数据集,其中预处理步骤包括将图像转换为灰度图像,压缩和去除噪声。进行分割以划分使用和未使用土地的区域。这里使用局部二进制特征提取来完成特征提取,以便识别边缘,平坦和拐角表面。如上所述,在遥感地球图像的分类和标记中使用了各种算法。 CNN算法也用于分类,并且分类的标记通过使用CNN算法自动完成。随机森林用于将已使用和未使用的土地划分为两个景观,其准确性要优于现有系统。

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