Training data in satellite image classification for land cover mapping: a review

IF 3.7 4区 地球科学 Q2 REMOTE SENSING
Daniel Moraes, Manuel L. Campagnolo, Mário Caetano
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引用次数: 0

Abstract

The current land cover (LC) mapping paradigm relies on automatic satellite imagery classification, predominantly through supervised methods, which depend on training data to calibrate classificatio...
用于土地覆被制图的卫星图像分类中的训练数据:综述
当前的土地覆被制图范例依赖于卫星图像自动分类,主要是通过有监督的方法,这种方法依赖于训练数据来校准分类。
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来源期刊
CiteScore
7.00
自引率
2.50%
发文量
51
审稿时长
>12 weeks
期刊介绍: European Journal of Remote Sensing publishes research papers and review articles related to the use of remote sensing technologies. The Journal welcomes submissions on all applications related to the use of active or passive remote sensing to terrestrial, oceanic, and atmospheric environments. The most common thematic areas covered by the Journal include: -land use/land cover -geology, earth and geoscience -agriculture and forestry -geography and landscape -ecology and environmental science -support to land management -hydrology and water resources -atmosphere and meteorology -oceanography -new sensor systems, missions and software/algorithms -pre processing/calibration -classifications -time series/change analysis -data integration/merging/fusion -image processing and analysis -modelling European Journal of Remote Sensing is a fully open access journal. This means all submitted articles will, if accepted, be available for anyone to read anywhere, at any time, immediately on publication. There are no charges for submission to this journal.
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