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AUTOMATED PROCESS FOR DYNAMIC MATERIAL CLASSIFICATION IN REMOTELY SENSED IMAGERY

机译:远程感测图像中动态材料分类的自动化过程

摘要

An automated system is provided for classifying materials in remotely-sensed imagery based on automated construction of a dynamic classifier—namely, a classifier that is automatically trained on the same image to which it is then subsequently applied. A first automated process identifies high confidence exemplars of each class using tailored classification techniques. This data is then used to train a supervised classification model (e.g., discriminant analysis), and the resultant classifier is applied to other pixels in the image that are unclassified or uncertain. Dynamic classification is automatically customized to the current image and can yield a more accurate and efficient material classification versus a static (image-independent) or manually trained classifier. It can overcome various confounding factors including inconsistencies in radiometric calibration, atmospheric conditions, and atmospheric distortions of ground spectra; different viewing and illumination geometries; and regional variations in the composition of certain materials like asphalt and concrete.
机译:基于动态分类器的自动结构 - 即,在随后应用的同一图像上自动培训的分类器,提供了一种自动化系统的自动化系统。第一自动化过程使用量身定制的分类技术识别每个类的高置信度示例。然后,该数据用于训练监督分类模型(例如,判别分析),并且将得到的分类器应用于未分类或不确定的图像中的其他像素。动态分类自动定制到当前图像,可以产生更准确,更有效的材料分类,而静态(图像无关)或手动培训的分类器。它可以克服各种混杂因素,包括在辐射校准,大气条件和地面光谱的大气扭曲中不一致;不同的观看和照明几何形状;和某些材料的结构变异,如沥青和混凝土。

著录项

  • 公开/公告号US2021150183A1

    专利类型

  • 公开/公告日2021-05-20

    原文格式PDF

  • 申请/专利权人 MAXAR INTELLIGENCE INC.;

    申请/专利号US201916685977

  • 发明设计人 BRETT W. BADER;BETH STEIN;SETH MALITZ;

    申请日2019-11-15

  • 分类号G06K9;G06K9/62;

  • 国家 US

  • 入库时间 2022-08-24 18:45:16

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