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无人机遥感在植被识别中的应用:综述与荟萃分析

Application of UAV remote sensing for vegetation identification: a review and meta-analysis.

作者信息

Chang Baohua, Li Fei, Hu Yuncai, Yin Hang, Feng Zhenhua, Zhao Liang

机构信息

College of Resources and Environment, Inner Mongolia Agricultural University, Hohhot, China.

Inner Mongolia Key Laboratory of Soil Quality and Nutrient Resources, Key Laboratory of Agricultural Ecological Security and Green Development at Universities of Inner Mongolia Autonomous, Hohhot, China.

出版信息

Front Plant Sci. 2025 May 30;16:1452053. doi: 10.3389/fpls.2025.1452053. eCollection 2025.

Abstract

Green vegetation is an essential part of natural resources and is vital to the ecosystem. Simultaneously, with improving people's living standards, food security and the supply of forage resources have become increasingly the focus of attention. Therefore, timely and accurate monitoring and accurate and timely vegetation classification are significant for the rational utilization of agricultural resources. In recent years, the unmanned aerial vehicle (UAV) platform has attracted considerable attention and achieved great success in the application of remote sensing identification of vegetation due to the combination of the advantages of satellite and airborne systems. However, the results of many studies haven't yet been synthesized to provide practical guidance for improving recognition performance. This study aimed to introduce the primary classifiers used for UAV remote-sensing vegetation identification and conducted a meta-analysis of relevant research on UAV remote-sensing vegetation identification. This meta-analysis reviewed 79 papers, analyzed the general characteristics of spatial and temporal distribution and journal sources, and compared the relationship between research objectives, sensor types, spatial resolution, research methods, number of target categories, and the overall accuracy of the results. Finally, a detailed review was conducted on how unmanned aerial vehicle remote sensing is applied in vegetation identification, along with the current unresolved issues and prospects.

摘要

绿色植被是自然资源的重要组成部分,对生态系统至关重要。同时,随着人们生活水平的提高,粮食安全和饲料资源供应日益成为关注焦点。因此,及时准确的监测以及准确及时的植被分类对于农业资源的合理利用具有重要意义。近年来,无人机(UAV)平台由于结合了卫星和机载系统的优势,在植被遥感识别应用中受到了广泛关注并取得了巨大成功。然而,许多研究结果尚未综合起来为提高识别性能提供实际指导。本研究旨在介绍用于无人机遥感植被识别的主要分类器,并对无人机遥感植被识别的相关研究进行荟萃分析。该荟萃分析综述了79篇论文,分析了时空分布和期刊来源的一般特征,并比较了研究目标、传感器类型、空间分辨率、研究方法、目标类别数量与结果总体准确性之间的关系。最后,对无人机遥感在植被识别中的应用方式、当前未解决的问题及前景进行了详细综述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9274/12162937/23abaebeeb6a/fpls-16-1452053-g001.jpg

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