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Simultaneous Segmentation-Recognition-Vectorization of Meaningful Geographical Objects in Geo-Images

机译:地理图像中有意义地理对象的同步分割 - 识别 - 识别 - 化

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We present an approach to color image segmentation by applying it to recognition and vectorization of geo-images (satellite, cartographic). This is a simultaneous segmentation-recognition system when segmented geographical objects of interest (alphanumeric, punctual, linear, and area) are labeled by the system in same, but are different for each type of objects, gray-level values. We exchange the source image by a number of simplified images. These images are called composites. Every composite image is associated with certain image feature. Some of the composite images that contain the objects of interest are used in the following object detection-recognition by means of association to the segmented objects corresponding "names" from the user-defined subject domain. The specification of features and object names associated with perspective composite representations is regarded as a type of knowledge domain, which allows automatic or interactive system's learning. The results of gray-level and color image segmentation-recognition and vectoriztion are shown.
机译:我们通过将其应用于地理图像(卫星,制图)来展示彩色图像分割方法。这是一个同时分割 - 识别系统,当系统的分段地理对象(字母数字,准时,线性和区域)被系统标记相同,但对每种类型的对象都有不同,灰度级值。我们通过许多简化的图像交换源图像。这些图像称为复合材料。每个合成图像都与某些图像特征相关联。包含感兴趣对象的一些合成图像用于通过与来自用户定义的主题域的分段对象相应的“名称”的分段对象的关联中的以下对象检测识别。与透视复合表示相关联的功能和对象名称的规范被视为一种知识域,允许自动或交互式系统的学习。显示了灰度和彩色图像分割 - 识别和向量精度的结果。

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