Tree Species Classification Based on Self-Supervised Learning with Multisource Remote Sensing Images
Author:
Affiliation:
1. Network Information Center, Qiqihar University, Qiqihar 161006, China
2. School of Architecture and Civil Engineering, Qiqihar University, Qiqihar 161006, China
3. National Asset Management Office, Qiqihar University, Qiqihar 161006, China
Abstract
Funder
Basic Scientific Research Project of Heilongjiang Provincial Universities
Publisher
MDPI AG
Subject
Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science
Link
https://www.mdpi.com/2076-3417/13/3/1928/pdf
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3. Saheer, L.B., and Shahawy, M. (2021, January 25–27). Self-Supervised Approach for Urban Tree Recognition on Aerial Images. Proceedings of the IFIP International Conference on Artificial Intelligence Applications and Innovations, Hersonissos, Greece.
4. Weinstein, B.G., Marconi, S., Bohlman, S., Zare, A., and White, E. (2019). Individual tree-crown detection in RGB imagery using semi-supervised deep learning neural networks. Remote Sens., 11.
5. Cat Tuong, T.T., Tani, H., Wang, X., and Thang, N.Q. (2019). Semi-supervised classification and landscape metrics for mapping and spatial pattern change analysis of tropical forest types in Thua Thien Hue province, Vietnam. Forests, 10.
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