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		<citationkey>UeharaSoQuKöFoAd:2020:LaCoCl</citationkey>
		<title>Land cover classification of an area susceptible to landslides using random forest and NDVI time series data</title>
		<year>2020</year>
		<secondarytype>PRE CI</secondarytype>
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		<author>Uehara, Tatiana Dias Tardelli,</author>
		<author>Soares, Anderson Reis,</author>
		<author>Quevedo, Renata Pacheco,</author>
		<author>Körting, Thales Sehn,</author>
		<author>Fonseca, Leila Maria Garcia,</author>
		<author>Adami, Marcos,</author>
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		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
		<affiliation>Instituto Nacional de Pesquisas Espaciais (INPE)</affiliation>
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		<electronicmailaddress>anderson.soares@inpe.br</electronicmailaddress>
		<electronicmailaddress>renata.quevedo@inpe.br</electronicmailaddress>
		<electronicmailaddress>thales.korting@inpe.br</electronicmailaddress>
		<electronicmailaddress>leila.fonseca@inpe.br</electronicmailaddress>
		<electronicmailaddress>marcos.adami@inpe.br</electronicmailaddress>
		<conferencename>IEEE International Geoscience and Remote Sensing Symposium (IGARSS)</conferencename>
		<conferencelocation>Virtual Symposium</conferencelocation>
		<date>26 Sept. - 02 Oct.</date>
		<transferableflag>1</transferableflag>
		<contenttype>External Contribution</contenttype>
		<keywords>landslide, time series, Random Forest, land cover, disasters.</keywords>
		<abstract>Landslides are a natural, gravity driven phenomena which can cause great economic and human losses. To prevent them, Land Use and Land Cover (LULC) maps are essential to identify areas of high susceptibility and to detect landslide scars. This paper presents results of a classification of a landslide susceptible area, using Random Forest algorithm and time series. The time series dataset is composed by the Normalized Difference Vegetation Index (NDVI) values and 16 metrics derived from the time series. The best performance was achieved using 14 metrics plus the NDVI values, with overall accuracy of 93.23% and kappa equals to 0.8937. The metrics revealed a great capability for landslides detection.</abstract>
		<area>SRE</area>
		<language>en</language>
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