2018
DOI: 10.5194/isprs-archives-xlii-1-387-2018
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Lem Benchmark Database for Tropical Agricultural Remote Sensing Application

Abstract: <p><strong>Abstract.</strong> The monitoring of agricultural activities at a regular basis is crucial to assure that the food production meets the world population demands, which is increasing yearly. Such information can be derived from remote sensing data. In spite of topic’s relevance, not enough efforts have been invested to exploit modern pattern recognition and machine learning methods for agricultural land-cover mapping from multi-temporal, multi-sensor earth observation data. Furtherm… Show more

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Cited by 22 publications
(20 citation statements)
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References 23 publications
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“…The second region is located in Luis Eduardo Magalhães (LEM) municipality, also in Brazil, with an area of 3,940 km 2 (Sanches et al, 2018a). A set of 13 pre-processed Sentinel-1 SAR images acquired between June 2017 and June 2018 was used in our experiments.…”
Section: Study Areasmentioning
confidence: 99%
“…The second region is located in Luis Eduardo Magalhães (LEM) municipality, also in Brazil, with an area of 3,940 km 2 (Sanches et al, 2018a). A set of 13 pre-processed Sentinel-1 SAR images acquired between June 2017 and June 2018 was used in our experiments.…”
Section: Study Areasmentioning
confidence: 99%
“…The second issue is more difficult to address, since field information is time-consuming and expensive to be acquired and demand specialists. However, researchers are becoming more willing to share their own data, and the number of free available databases containing field information are increasing, for example, the databases of Sanches et al (2018a) and Sanches et al (2018b).…”
Section: Agricultural Remote Sensingmentioning
confidence: 99%
“…Field works to record in-situ data from each region were performed by experts from INPE and EMBRAPA, while the acquisition and pre-processing of radar images have been carried out during the development of this thesis. A detailed description and more information about each dataset can be found in [11] and in [12].…”
Section: Two Public Datasets For Crop Recognition In Tropical Regionsmentioning
confidence: 99%
“…They were in charge of the field works to collect data from the study areas to assign a label to each plot, while the acquisition and pre-processing of Sentinel-1A scenes was performed at PUC-Rio. These datasets received financial support from the Brazilian agencies CAPES 1 and CNPq 2 for Campo Verde [11], and from the ISPRS 3 , for Luis Eduardo Magalhães [12].…”
Section: Datasetsmentioning
confidence: 99%
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