Remote Sensing Intelligent Interpretation | Views:1278Downloads:3679CSCD:2
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    • High resolution remote sensing image segmentation based on dual-modal efficient feature learning

    • In the field of remote sensing image segmentation, experts have proposed a high-resolution remote sensing image segmentation algorithm based on bimodal feature learning, which effectively improves segmentation accuracy.
      • role:First author第一作者
      • Affiliation:

        School of Electronic and Information Engineering, Wuxi University, Wuxi 214105, China

        School of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China

      • Email:yorkzhang@nuist.edu.cn
      • Introduction:张银胜,研究方向为遥感图像处理、深度学习。E-mail: yorkzhang@nuist.edu.cn

      ZHANG Yinsheng

      12,
      • role:Corresponding author通信作者
      • Affiliation:

        School of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China

      • Email:20211249643@nuist.edu.cn
      • Introduction:吉茹,研究方向为遥感图像分割、深度学习。E-mail: 20211249643@nuist.edu.cn

      JI Ru

      2 * ,
      • Affiliation:

        School of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China

      TONG Junyi

      2,
      • Affiliation:

        School of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China

      YANG Yulong

      2,
      • Affiliation:

        School of Electronic and Information Engineering, Wuxi University, Wuxi 214105, China

      HU Yuxiang

      1,
      • Affiliation:

        School of Electronic and Information Engineering, Wuxi University, Wuxi 214105, China

        School of Electronic and Information Engineering, Nanjing University of Information Science and Technology, Nanjing 210044, China

      SHAN Huilin

      12
    • Vol. 28, Issue 2, Pages: 481-493(2024)  
    • DOI:10.11834/jrs.20233162    

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Related Author

TONG Junyi 南京信息工程大学 电子与信息工程学院
YANG Yulong 南京信息工程大学 电子与信息工程学院
HU Yuxiang 无锡学院 电子信息工程学院
SHAN Huilin 无锡学院 电子信息工程学院;南京信息工程大学 电子与信息工程学院
ZHOU Chenghu 中国科学院地理科学与资源研究所 资源与环境信息系统国家重点实验室;南京师范大学 江苏地理信息资源开发与应用协同创新中心
BAI Yongqing 中国科学院空天信息创新研究院 遥感科学国家重点实验室
YAO Ling 中国科学院地理科学与资源研究所 资源与环境信息系统国家重点实验室;南京师范大学 江苏地理信息资源开发与应用协同创新中心
JIANG Hou 中国科学院地理科学与资源研究所 资源与环境信息系统国家重点实验室

Related Institution

State Key Laboratory of Resources and Environmental Information System,‍ Institute of Geographic Sciences and Resources, Chinese Academy of Sciences
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State Key Laboratory of Resources and Environmental Information System, Institute of Geographic Sciences and Resources, Chinese Academy of Sciences
State Key Laboratory of Remote Sensing Science, Aerospace Information Research Institute, Chinese Academy of Sciences