机译:基于卷积神经网络的光学天线图像变化检测的转移学习
Univ Chinese Acad Sci Sch Elect Elect & Commun Engn Beijing 100049 Peoples R China|Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Key Lab Technol Geospatial Informat Proc & Applic Beijing 100190 Peoples R China;
Chinese Acad Sci Inst Elect Beijing 100190 Peoples R China|Chinese Acad Sci Cloud Comp Ctr Dongguan 523008 Peoples R China;
Feature extraction; Semantics; Data models; Training; Remote sensing; Optical imaging; Training data; Change detection; convolutional neural network 20 (CNN); deep learning; optical aerial image; transfer learning;
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机译:使用光空中图像的农业作物杂草检测深度卷积神经网络