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Spatio-Temporal Vegetation Pixel Classification by Using Convolutional Networks

delete2019-10-01
delete12
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OA
AI
K
Keiller Nogueira
J
Jefersson A. dos Santos *
N
Nathalia Menini
T
Thiago Sanna Freire Silva
L
Leonor Patrícia Cerdeira Morellato
R
Ricardo da Silva Torres
DOI:10.1109/LGRS.2019.2903194delete
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摘要

摘要

En 中文
Plant phenology studies rely on long-term monitoring of life cycles of plants. High-resolution unmanned aerial vehicles (UAVs) and near-surface technologies have been used for plant monitoring, demanding the creation of methods capable of locating, and identifying plant species through time and space. However, this is a challenging task given the high volume of data, the constant data missing from temporal dataset, the heterogeneity of temporal profiles, the variety of plant visual patterns, and the unclear definition of individuals' boundaries in plant communities. In this letter, we propose a novel method, suitable for phenological monitoring, based on convolutional networks (ConvNets) to perform spatio-temporal vegetation pixel classification on high-resolution images. We conducted a systematic evaluation using high-resolution vegetation image datasets associated with the Brazilian Cerrado biome. Experimental results show that the proposed approach is effective, overcoming other spatio-temporal pixel-classification strategies.
Keyword:
Deep learning
near surface
phenology
pixel classification
unmanned aerial vehicles
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IEEE Geoscience and Remote Sensing Magazine 封面图
IEEE Geoscience and Remote Sensing Magazine
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16.4
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Universidade Estadual Paulista
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Universidade Federal de Minas Gerais
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universidade estadual de campinas
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universidade de sao paulo
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被引数: 93
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