Módulos computacionais de análise geoestatística e retificação de zonas de manejo

Detalhes bibliográficos
Ano de defesa: 2017
Autor(a) principal: Betzek, Nelson Miguel lattes
Orientador(a): Souza, Eduardo Godoy de lattes
Banca de defesa: Opazo, Miguel Angel Uribe lattes, Pinheiro Neto, Raimundo lattes, Gonçalves, Antonio Carlos Andrade lattes, Maggi, Marcio Furlan lattes
Tipo de documento: Tese
Tipo de acesso: Acesso aberto
Idioma: por
Instituição de defesa: Universidade Estadual do Oeste do Paraná
Cascavel
Programa de Pós-Graduação: Programa de Pós-Graduação em Engenharia Agrícola
Departamento: Centro de Ciências Exatas e Tecnológicas
País: Brasil
Palavras-chave em Português:
Palavras-chave em Inglês:
Área do conhecimento CNPq:
Link de acesso: http://tede.unioeste.br/handle/tede/3082
Resumo: The use of computer systems for the management of agricultural procedures has been an emerging need. However, applications used for this purpose generally present restrictions on functionality, operating licenses, operating system and others. Thus, the Software for the Definition of Management Units (SDUM) was developed. This thesis aimed at implementing computational routines that will be integrated into SDUM, which are able to identify automatically the best parameters for the ordinary kriging (KRI) interpolation methods and inverse distance weighting (IDW). These routines were applied to the sample data of selected attributes to define MZs in two agricultural areas. For each dataset 300 different adjustments were tested for the semivariogram. The best parameters were used to measure data by KRI as well as twelve different values for IDW exponent. Area A was considered homogeneous because it did not present statistic different mean between classes. While for area B, the best result was subdivided into two distinct classes. MZs usually present isolated cells or patches, in such a way that crop management becomes difficult. In this context, another goal was to implement routines able of adjusting MZs, to smooth and to improve continuity. Three sampled areas were subdivided into two, three, four and five classes, and then adjusted for five times. Isolated pixels and almost all patches were eliminated, especially the methods with 5 × 5 mask. So, it can be concluded that the computational routines implemented were efficient and able to identify the best adjustment for the semivariogram as well as the best exponent for IDW, also smoothing and improving MZs continuity.
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spelling Souza, Eduardo Godoy dehttp://lattes.cnpq.br/8600401135679947Bazzi, Claudio Leoneshttp://lattes.cnpq.br/2170981286370303Opazo, Miguel Angel Uribehttp://lattes.cnpq.br/4179444121729414Pinheiro Neto, Raimundohttp://lattes.cnpq.br/8093716531978973Gonçalves, Antonio Carlos Andradehttp://lattes.cnpq.br/3985375596784614Maggi, Marcio Furlanhttp://lattes.cnpq.br/8677221771738301http://lattes.cnpq.br/6096556716682492Betzek, Nelson Miguel2017-09-21T19:55:37Z2017-02-17BETZEK, Nelson Miguel. Módulos computacionais de análise geoestatística e retificação de zonas de manejo. 2017. 100 f. Tese (Doutorado - Programa de Pós-Graduação em Engenharia Agrícola) - Universidade Estadual do Oeste do Paraná, Cascavel, 2017.http://tede.unioeste.br/handle/tede/3082The use of computer systems for the management of agricultural procedures has been an emerging need. However, applications used for this purpose generally present restrictions on functionality, operating licenses, operating system and others. Thus, the Software for the Definition of Management Units (SDUM) was developed. This thesis aimed at implementing computational routines that will be integrated into SDUM, which are able to identify automatically the best parameters for the ordinary kriging (KRI) interpolation methods and inverse distance weighting (IDW). These routines were applied to the sample data of selected attributes to define MZs in two agricultural areas. For each dataset 300 different adjustments were tested for the semivariogram. The best parameters were used to measure data by KRI as well as twelve different values for IDW exponent. Area A was considered homogeneous because it did not present statistic different mean between classes. While for area B, the best result was subdivided into two distinct classes. MZs usually present isolated cells or patches, in such a way that crop management becomes difficult. In this context, another goal was to implement routines able of adjusting MZs, to smooth and to improve continuity. Three sampled areas were subdivided into two, three, four and five classes, and then adjusted for five times. Isolated pixels and almost all patches were eliminated, especially the methods with 5 × 5 mask. So, it can be concluded that the computational routines implemented were efficient and able to identify the best adjustment for the semivariogram as well as the best exponent for IDW, also smoothing and improving MZs continuity.A utilização de sistemas computacionais para gerência de procedimentos agrícolas é necessidade premente. Porém, aplicativos utilizados com este objetivo geralmente possuem limitações quanto a funcionalidades, licenças de uso, sistema operacional, dentre outras. Por este motivo, foi desenvolvido o Software para Definição de Unidades de Manejo (SDUM). Esta tese teve como objetivo a implementação de rotinas computacionais que serão integradas ao SDUM, capazes de identificar automaticamente os melhores parâmetros para os métodos de interpolação Krigagem ordinária (KRI) e inverso da distância elevado a uma potência (IDW). Estas rotinas foram aplicadas aos dados amostrais de atributos selecionados para definir as ZMs em duas áreas agrícolas. Para cada conjunto de dados foram testados 300 diferentes ajustes para o semivariograma. Os melhores parâmetros foram utilizados para mensurar dados por KRI, e doze diferentes valores para expoente do IDW. A área A foi considerada homogênea por não apresentar média estatisticamente diferente entre as classes. E, para a área B, o melhor resultado obtido foi subdividi-la em duas classes distintas. As ZMs geralmente apresentam células isoladas ou manchas, dificultando a operacionalização da lavoura. Neste contexto, outro objetivo foi a implementação de rotinas capazes de retificar as ZMs a fim de suavizar e melhorar a continuidade. Três áreas amostrais foram subdividas em duas, três, quatro e cinco classes, e então, retificadas por cinco vezes. Pixels isolados e praticamente todas as manchas foram eliminados, com destaque para os métodos com máscara 5 × 5. Pode-se concluir que as rotinas computacionais implementadas foram eficientes e capazes de identificar o melhor ajuste para o semivariograma, bem como o melhor expoente para IDW, além de suavizar e melhorar a continuidade das ZMs.Submitted by Neusa Fagundes (neusa.fagundes@unioeste.br) on 2017-09-21T19:55:37Z No. of bitstreams: 1 Nelson_Betzek2017.pdf: 5172812 bytes, checksum: f7d31be6f4ffc5866da87c134845a423 (MD5)Made available in DSpace on 2017-09-21T19:55:37Z (GMT). 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dc.title.por.fl_str_mv Módulos computacionais de análise geoestatística e retificação de zonas de manejo
dc.title.alternative.eng.fl_str_mv Computational modules for geostatistic analysis and adjustment of management zones
title Módulos computacionais de análise geoestatística e retificação de zonas de manejo
spellingShingle Módulos computacionais de análise geoestatística e retificação de zonas de manejo
Betzek, Nelson Miguel
Agricultura de precisão
Índice de suavização
Krigagem ordinária
Sistemas computacionais
Computer systems
Precision agriculture
Ordinary kriging
Smoothing
CIENCIAS AGRARIAS::ENGENHARIA AGRICOLA
title_short Módulos computacionais de análise geoestatística e retificação de zonas de manejo
title_full Módulos computacionais de análise geoestatística e retificação de zonas de manejo
title_fullStr Módulos computacionais de análise geoestatística e retificação de zonas de manejo
title_full_unstemmed Módulos computacionais de análise geoestatística e retificação de zonas de manejo
title_sort Módulos computacionais de análise geoestatística e retificação de zonas de manejo
author Betzek, Nelson Miguel
author_facet Betzek, Nelson Miguel
author_role author
dc.contributor.advisor1.fl_str_mv Souza, Eduardo Godoy de
dc.contributor.advisor1Lattes.fl_str_mv http://lattes.cnpq.br/8600401135679947
dc.contributor.advisor-co1.fl_str_mv Bazzi, Claudio Leones
dc.contributor.advisor-co1Lattes.fl_str_mv http://lattes.cnpq.br/2170981286370303
dc.contributor.referee1.fl_str_mv Opazo, Miguel Angel Uribe
dc.contributor.referee1Lattes.fl_str_mv http://lattes.cnpq.br/4179444121729414
dc.contributor.referee2.fl_str_mv Pinheiro Neto, Raimundo
dc.contributor.referee2Lattes.fl_str_mv http://lattes.cnpq.br/8093716531978973
dc.contributor.referee3.fl_str_mv Gonçalves, Antonio Carlos Andrade
dc.contributor.referee3Lattes.fl_str_mv http://lattes.cnpq.br/3985375596784614
dc.contributor.referee4.fl_str_mv Maggi, Marcio Furlan
dc.contributor.referee4Lattes.fl_str_mv http://lattes.cnpq.br/8677221771738301
dc.contributor.authorLattes.fl_str_mv http://lattes.cnpq.br/6096556716682492
dc.contributor.author.fl_str_mv Betzek, Nelson Miguel
contributor_str_mv Souza, Eduardo Godoy de
Bazzi, Claudio Leones
Opazo, Miguel Angel Uribe
Pinheiro Neto, Raimundo
Gonçalves, Antonio Carlos Andrade
Maggi, Marcio Furlan
dc.subject.por.fl_str_mv Agricultura de precisão
Índice de suavização
Krigagem ordinária
Sistemas computacionais
topic Agricultura de precisão
Índice de suavização
Krigagem ordinária
Sistemas computacionais
Computer systems
Precision agriculture
Ordinary kriging
Smoothing
CIENCIAS AGRARIAS::ENGENHARIA AGRICOLA
dc.subject.eng.fl_str_mv Computer systems
Precision agriculture
Ordinary kriging
Smoothing
dc.subject.cnpq.fl_str_mv CIENCIAS AGRARIAS::ENGENHARIA AGRICOLA
description The use of computer systems for the management of agricultural procedures has been an emerging need. However, applications used for this purpose generally present restrictions on functionality, operating licenses, operating system and others. Thus, the Software for the Definition of Management Units (SDUM) was developed. This thesis aimed at implementing computational routines that will be integrated into SDUM, which are able to identify automatically the best parameters for the ordinary kriging (KRI) interpolation methods and inverse distance weighting (IDW). These routines were applied to the sample data of selected attributes to define MZs in two agricultural areas. For each dataset 300 different adjustments were tested for the semivariogram. The best parameters were used to measure data by KRI as well as twelve different values for IDW exponent. Area A was considered homogeneous because it did not present statistic different mean between classes. While for area B, the best result was subdivided into two distinct classes. MZs usually present isolated cells or patches, in such a way that crop management becomes difficult. In this context, another goal was to implement routines able of adjusting MZs, to smooth and to improve continuity. Three sampled areas were subdivided into two, three, four and five classes, and then adjusted for five times. Isolated pixels and almost all patches were eliminated, especially the methods with 5 × 5 mask. So, it can be concluded that the computational routines implemented were efficient and able to identify the best adjustment for the semivariogram as well as the best exponent for IDW, also smoothing and improving MZs continuity.
publishDate 2017
dc.date.accessioned.fl_str_mv 2017-09-21T19:55:37Z
dc.date.issued.fl_str_mv 2017-02-17
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dc.identifier.citation.fl_str_mv BETZEK, Nelson Miguel. Módulos computacionais de análise geoestatística e retificação de zonas de manejo. 2017. 100 f. Tese (Doutorado - Programa de Pós-Graduação em Engenharia Agrícola) - Universidade Estadual do Oeste do Paraná, Cascavel, 2017.
dc.identifier.uri.fl_str_mv http://tede.unioeste.br/handle/tede/3082
identifier_str_mv BETZEK, Nelson Miguel. Módulos computacionais de análise geoestatística e retificação de zonas de manejo. 2017. 100 f. Tese (Doutorado - Programa de Pós-Graduação em Engenharia Agrícola) - Universidade Estadual do Oeste do Paraná, Cascavel, 2017.
url http://tede.unioeste.br/handle/tede/3082
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Cascavel
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