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A web-based semi-automated method for semantic annotation of high schools in remote sensing images

机译:一种基于网络的半自动方法,用于遥感图像中的高中语义注释

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The overwhelming volume of routine image acquisition requires automated methods or systems for feature discovery instead of manual image interpretation. While most existing researches focus on extracting elementary features such as basic terrains and individual objects, the detection of compound feature is still a challenge. This paper proposes a semi-automated approach integrating supervised image classification and geo-processing workflow to discover and annotate compound objects within RS images. Taking the high school in U.S. as an example, we developed a web-based prototype system to detect compound objects. Experimental results by the prototype show that the approach is capable of annotating high schools with an acceptable accuracy. This paper demonstrates a novel way to leverage existing technologies in completing the semantic annotation of RS images.
机译:常规图像采集的压倒性程度需要用于特征发现的自动化方法或系统而不是手动图像解释。虽然大多数现有的研究专注于提取基本地形和单个物体等基本特征,但复合特征的检测仍然是一个挑战。本文提出了一种半自动方法,集成了监督图像分类和地理处理工作流程,以发现和注释RS图像中的复合物体。以美国为例,我们开发了一种基于Web的原型系统来检测复合物体。原型的实验结果表明,该方法能够以可接受的准确度注释高中。本文展示了利用现有技术在完成RS图像的语义注释时利用现有技术的新方法。

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