Objective sampling estimation of regional crop area supported by remotely sensed images

Detalhes bibliográficos
Autor(a) principal: Luiz, Alfredo José Barreto
Data de Publicação: 2012
Outros Autores: Formaggio, Antônio Roberto, Epiphanio, José Carlos Neves, Arenas-Toledo, John Mauricio, Goltz, Elizabeth, Brandão, Daniela
Tipo de documento: Artigo
Idioma: por
Título da fonte: Pesquisa Agropecuária Brasileira (Online)
Texto Completo: https://seer.sct.embrapa.br/index.php/pab/article/view/11477
Resumo: The objective of this work was to develop and evaluate a method for estimating soybean crop area on a regional scale and to calculate the statistical error associated with the estimate. The method (Geosafras), which combines statistical sampling techniques with characteristics of images obtained by orbital remote sensing, was applied to obtain an objective sampling estimation for soybean crop area in the 2005/2006 harvest season in the state of Rio Grande do Sul (RS), Brazil. Soybean‑producing municipalities in RS were distributed into ten strata according to preexisting data on the area cultivated with the crop. The number of municipalities selected in each stratum followed Neyman’s allocation rule. In each selected municipality, points corresponding to the pixels of images were randomized and classified as “soybean” or “non‑soybean” after site visitation. From the data of 3,000 points in the 30 selected municipalities across the ten strata, soybean crop area in RS was estimated, totaling 4,069,887 ha, with a coefficient of variation (CV) of 3.4%. This estimate was consistent with official data. The stratified objective sampling method, supported by remote sensing, allows for the estimation of the area cultivated with soybean in the state of Rio Grande do Sul and is able to quantify the error associated with the calculated estimate.
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spelling Objective sampling estimation of regional crop area supported by remotely sensed imagesEstimativa amostral objetiva de área plantada regional, apoiada em imagens de sensoriamento remotoGlycine max; sampling error; agricultural statistics; stratification; satellite image; crop forecasting.Glycine max; erro amostral; estatística agrícola; estratificação; imagem de satélite; previsão de safras.The objective of this work was to develop and evaluate a method for estimating soybean crop area on a regional scale and to calculate the statistical error associated with the estimate. The method (Geosafras), which combines statistical sampling techniques with characteristics of images obtained by orbital remote sensing, was applied to obtain an objective sampling estimation for soybean crop area in the 2005/2006 harvest season in the state of Rio Grande do Sul (RS), Brazil. Soybean‑producing municipalities in RS were distributed into ten strata according to preexisting data on the area cultivated with the crop. The number of municipalities selected in each stratum followed Neyman’s allocation rule. In each selected municipality, points corresponding to the pixels of images were randomized and classified as “soybean” or “non‑soybean” after site visitation. From the data of 3,000 points in the 30 selected municipalities across the ten strata, soybean crop area in RS was estimated, totaling 4,069,887 ha, with a coefficient of variation (CV) of 3.4%. This estimate was consistent with official data. The stratified objective sampling method, supported by remote sensing, allows for the estimation of the area cultivated with soybean in the state of Rio Grande do Sul and is able to quantify the error associated with the calculated estimate.O objetivo deste trabalho foi desenvolver e avaliar um método para estimar a área plantada de soja em escala regional e calcular o erro estatístico associado à estimação. O método (Geosafras), que associa técnicas de amostragem estatística com características das imagens obtidas por sensoriamento remoto orbital, foi aplicado para obter estimativa amostral objetiva da área cultivada com soja, na safra de 2005/2006, no Estado do Rio Grande do Sul. Os municípios produtores de soja, no RS, foram distribuídos em dez estratos, com base em dados pré‑existentes de área cultivada com a cultura. O número de municípios selecionados, em cada estrato, seguiu a regra de alocação de Neyman. Em cada município selecionado, foram aleatorizados pontos correspondentes aos pixels das imagens, classificados como “soja” ou “não soja” após visita a campo. A partir dos dados de 3.000 pontos distribuídos nos 30 municípios selecionados, nos dez estratos, foi estimada a área cultivada com soja no RS, que totalizou 4.069.887 ha, com coeficiente de variação (CV) de 3,4%. Esta estimativa foi consistente com os dados oficiais. O método amostral objetivo estratificado, auxiliado por sensoriamento remoto, permite estimar a área cultivada com soja no Rio Grande do Sul e é capaz de quantificar o erro associado à estimativa realizada.Pesquisa Agropecuaria BrasileiraPesquisa Agropecuária BrasileiraLuiz, Alfredo José BarretoFormaggio, Antônio RobertoEpiphanio, José Carlos NevesArenas-Toledo, John MauricioGoltz, ElizabethBrandão, Daniela2012-11-09info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionapplication/pdfhttps://seer.sct.embrapa.br/index.php/pab/article/view/11477Pesquisa Agropecuaria Brasileira; v.47, n.9, set. 2012: Número Temático Geotecnologias; 1279-1287Pesquisa Agropecuária Brasileira; v.47, n.9, set. 2012: Número Temático Geotecnologias; 1279-12871678-39210100-104xreponame:Pesquisa Agropecuária Brasileira (Online)instname:Empresa Brasileira de Pesquisa Agropecuária (Embrapa)instacron:EMBRAPAporhttps://seer.sct.embrapa.br/index.php/pab/article/view/11477/7989https://seer.sct.embrapa.br/index.php/pab/article/downloadSuppFile/11477/7014info:eu-repo/semantics/openAccess2012-11-13T21:40:09Zoai:ojs.seer.sct.embrapa.br:article/11477Revistahttp://seer.sct.embrapa.br/index.php/pabPRIhttps://old.scielo.br/oai/scielo-oai.phppab@sct.embrapa.br || sct.pab@embrapa.br1678-39210100-204Xopendoar:2012-11-13T21:40:09Pesquisa Agropecuária Brasileira (Online) - Empresa Brasileira de Pesquisa Agropecuária (Embrapa)false
dc.title.none.fl_str_mv Objective sampling estimation of regional crop area supported by remotely sensed images
Estimativa amostral objetiva de área plantada regional, apoiada em imagens de sensoriamento remoto
title Objective sampling estimation of regional crop area supported by remotely sensed images
spellingShingle Objective sampling estimation of regional crop area supported by remotely sensed images
Luiz, Alfredo José Barreto
Glycine max; sampling error; agricultural statistics; stratification; satellite image; crop forecasting.
Glycine max; erro amostral; estatística agrícola; estratificação; imagem de satélite; previsão de safras.
title_short Objective sampling estimation of regional crop area supported by remotely sensed images
title_full Objective sampling estimation of regional crop area supported by remotely sensed images
title_fullStr Objective sampling estimation of regional crop area supported by remotely sensed images
title_full_unstemmed Objective sampling estimation of regional crop area supported by remotely sensed images
title_sort Objective sampling estimation of regional crop area supported by remotely sensed images
author Luiz, Alfredo José Barreto
author_facet Luiz, Alfredo José Barreto
Formaggio, Antônio Roberto
Epiphanio, José Carlos Neves
Arenas-Toledo, John Mauricio
Goltz, Elizabeth
Brandão, Daniela
author_role author
author2 Formaggio, Antônio Roberto
Epiphanio, José Carlos Neves
Arenas-Toledo, John Mauricio
Goltz, Elizabeth
Brandão, Daniela
author2_role author
author
author
author
author
dc.contributor.none.fl_str_mv

dc.contributor.author.fl_str_mv Luiz, Alfredo José Barreto
Formaggio, Antônio Roberto
Epiphanio, José Carlos Neves
Arenas-Toledo, John Mauricio
Goltz, Elizabeth
Brandão, Daniela
dc.subject.por.fl_str_mv Glycine max; sampling error; agricultural statistics; stratification; satellite image; crop forecasting.
Glycine max; erro amostral; estatística agrícola; estratificação; imagem de satélite; previsão de safras.
topic Glycine max; sampling error; agricultural statistics; stratification; satellite image; crop forecasting.
Glycine max; erro amostral; estatística agrícola; estratificação; imagem de satélite; previsão de safras.
description The objective of this work was to develop and evaluate a method for estimating soybean crop area on a regional scale and to calculate the statistical error associated with the estimate. The method (Geosafras), which combines statistical sampling techniques with characteristics of images obtained by orbital remote sensing, was applied to obtain an objective sampling estimation for soybean crop area in the 2005/2006 harvest season in the state of Rio Grande do Sul (RS), Brazil. Soybean‑producing municipalities in RS were distributed into ten strata according to preexisting data on the area cultivated with the crop. The number of municipalities selected in each stratum followed Neyman’s allocation rule. In each selected municipality, points corresponding to the pixels of images were randomized and classified as “soybean” or “non‑soybean” after site visitation. From the data of 3,000 points in the 30 selected municipalities across the ten strata, soybean crop area in RS was estimated, totaling 4,069,887 ha, with a coefficient of variation (CV) of 3.4%. This estimate was consistent with official data. The stratified objective sampling method, supported by remote sensing, allows for the estimation of the area cultivated with soybean in the state of Rio Grande do Sul and is able to quantify the error associated with the calculated estimate.
publishDate 2012
dc.date.none.fl_str_mv 2012-11-09
dc.type.none.fl_str_mv
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
info:eu-repo/semantics/publishedVersion
format article
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dc.identifier.uri.fl_str_mv https://seer.sct.embrapa.br/index.php/pab/article/view/11477
url https://seer.sct.embrapa.br/index.php/pab/article/view/11477
dc.language.iso.fl_str_mv por
language por
dc.relation.none.fl_str_mv https://seer.sct.embrapa.br/index.php/pab/article/view/11477/7989
https://seer.sct.embrapa.br/index.php/pab/article/downloadSuppFile/11477/7014
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Pesquisa Agropecuaria Brasileira
Pesquisa Agropecuária Brasileira
publisher.none.fl_str_mv Pesquisa Agropecuaria Brasileira
Pesquisa Agropecuária Brasileira
dc.source.none.fl_str_mv Pesquisa Agropecuaria Brasileira; v.47, n.9, set. 2012: Número Temático Geotecnologias; 1279-1287
Pesquisa Agropecuária Brasileira; v.47, n.9, set. 2012: Número Temático Geotecnologias; 1279-1287
1678-3921
0100-104x
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