Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais
| Ano de defesa: | 2019 |
|---|---|
| Autor(a) principal: | |
| Orientador(a): | |
| Banca de defesa: | , , |
| Tipo de documento: | Dissertação |
| Tipo de acesso: | Acesso aberto |
| Idioma: | por |
| Instituição de defesa: |
Instituto Nacional de Telecomunica??es
|
| Programa de Pós-Graduação: |
Mestrado em Engenharia de Telecomunica??es
|
| Departamento: |
Instituto Nacional de Telecomunica??es
|
| País: |
Brasil
|
| Palavras-chave em Português: | |
| Área do conhecimento CNPq: | |
| Link de acesso: | https://tede.inatel.br:8080/tede/handle/tede/187 |
Resumo: | Spectral shortage is a major constraint to the advancement of wireless communication systems especially when such systems must provide a high data rate and support high connection density, which is expected from the fifth generation of telecommunications networks. Cognitive radio technology allows opportunistic and efficient use of bands that may be underutilized in the electromagnetic spectrum and, therefore, may be a solution to the aforementioned problem. To determine free spectral bands, cognitive radios use a technique called spectral sensing. Many sensing techniques have been proposed in the literature, but performing the performance evaluation of such techniques and relating them to the systemic parameters is not a trivial task. Recently the GID (Gini index detector) test was proposed for centrelized cooperative spectrum sensing on cognitive radio systems. Its main features are the low computational complexity, the robustness against unequal and dynamical noise and received signal powers. In this dissertation the procedures and the results of the goodness-of-fit of the GID test statistic are presented to diverse distributions of probability. It is demonstrated that the Stable distribution adequately characterizes the statistic under hipotese H0, while the Generalized Extreme Value distribution best applies to H1. Two artificial neural networks are then developed to establish the mapping between the systemic parameters and the parameters that characterize these distributions, allowing theoretical calculations of the performance and the decision threshold of spectral sensing are performed. |
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Guimar?es, Dayan Adionel739.337.836-15http://lattes.cnpq.br/2503439503631682Masselli, Yvo Marcelo Chiaradia028.155.736-52http://lattes.cnpq.br/5472065053345636Guimar?es, Dayan Adionel739.337.836-15http://lattes.cnpq.br/2503439503631682Ynoguti, Carlos Alberto156.167.778-70http://lattes.cnpq.br/5678667205895840Rodrigues Leite, Jo?o Paulo Reushttp://lattes.cnpq.br/2049342280490984http://lattes.cnpq.br/3060002179584445Lemes, Alan LimaLemes, Alan Lima2019-09-19T19:23:25Z2019-09-10Lemes, Alan Silva. Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais artificiais. 2019. [89]. Disserta??o( Mestrado em Engenharia de Telecomunica??es) - Instituto Nacional de Telecomunica??es, [Santa Rita do Sapuca?-MG] .https://tede.inatel.br:8080/tede/handle/tede/187Spectral shortage is a major constraint to the advancement of wireless communication systems especially when such systems must provide a high data rate and support high connection density, which is expected from the fifth generation of telecommunications networks. Cognitive radio technology allows opportunistic and efficient use of bands that may be underutilized in the electromagnetic spectrum and, therefore, may be a solution to the aforementioned problem. To determine free spectral bands, cognitive radios use a technique called spectral sensing. Many sensing techniques have been proposed in the literature, but performing the performance evaluation of such techniques and relating them to the systemic parameters is not a trivial task. Recently the GID (Gini index detector) test was proposed for centrelized cooperative spectrum sensing on cognitive radio systems. Its main features are the low computational complexity, the robustness against unequal and dynamical noise and received signal powers. In this dissertation the procedures and the results of the goodness-of-fit of the GID test statistic are presented to diverse distributions of probability. It is demonstrated that the Stable distribution adequately characterizes the statistic under hipotese H0, while the Generalized Extreme Value distribution best applies to H1. Two artificial neural networks are then developed to establish the mapping between the systemic parameters and the parameters that characterize these distributions, allowing theoretical calculations of the performance and the decision threshold of spectral sensing are performed.A escassez espectral ? um grande limitador para o avan?o dos sistemas de comunica??o sem fio sobretudo quando tais sistemas devem prover elevada taxa de transmiss?o de dados e suportar grande densidade de conex?o, que ? o que se espera da quinta gera??o das redes de telecomunica??es. A tecnologia de r?dio cognitivo permite utilizar de maneira oportunista e eficiente as faixas que por ventura estejam subutilizadas no espectro eletromagn?tico e, portanto, podem ser uma solu??o para o problema supracitado. Para determinar as bandas espectrais livres os r?dios cognitivos utilizam uma t?cnica denominada sensoriamento espectral. Muitas t?cnicas de sensoriamento foram propostas na literatura, por?m realizar a avalia??o de desempenho de tais t?cnicas e relacion?-las com os par?metros sist?micos n?o ? uma tarefa trivial. Recentemente foi proposto o teste GID (Gini index detector ) para sensoriamento espectral cooperativo centratizado em sistemas de r?dio cognitivo. Suas principais carater?sticas s?o a baixa complexidade e a robustez frente a pot?ncias de sinal recebido e de ru?do desiguais e variantes no tempo. Nesta disserta??o apresentam-se os procedimentos e os resultados da an?lise de ader?ncia da estat?stica de teste GID a diversas distribui??es de probabilidade. ? demonstrado que a distribui??o Stable caracteriza adequadamente a estat?stica sob a hip?tese H0, enquanto a distribui??o Generalized Extreme Value melhor se aplica a H1. Duas redes neurais artificiais s?o em seguida desenvolvidas para estabelecer o mapeamento entre os par?metros sist?micos e os par?metros que caracterizam tais distribui??es, permitindo que c?lculos te?ricos do desempenho e do limiar de decis?o do sensoriamento espectral sejam realizados.Submitted by Tede Dspace (tede@inatel.br) on 2019-09-19T19:23:25Z No. of bitstreams: 2 license_rdf: 0 bytes, checksum: d41d8cd98f00b204e9800998ecf8427e (MD5) Parametriza??o das Distribui??es da Estat?stica de Teste GID.pdf: 1230697 bytes, checksum: 6f7904d78740a0cac5764614770939be (MD5)Made available in DSpace on 2019-09-19T19:23:25Z (GMT). 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| dc.title.por.fl_str_mv |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| title |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| spellingShingle |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais Lemes, Alan Lima R?dio Cognitivo; GID; Sensoriamento Espectral Cooperativo; Teste de Ader?ncia; Redes Neurais Artificiais Engenharia de Telecomunica??es |
| title_short |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| title_full |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| title_fullStr |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| title_full_unstemmed |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| title_sort |
Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais aritificiais |
| author |
Lemes, Alan Lima |
| author_facet |
Lemes, Alan Lima |
| author_role |
author |
| dc.contributor.advisor1.fl_str_mv |
Guimar?es, Dayan Adionel |
| dc.contributor.advisor1ID.fl_str_mv |
739.337.836-15 |
| dc.contributor.advisor1Lattes.fl_str_mv |
http://lattes.cnpq.br/2503439503631682 |
| dc.contributor.advisor-co1.fl_str_mv |
Masselli, Yvo Marcelo Chiaradia |
| dc.contributor.advisor-co1ID.fl_str_mv |
028.155.736-52 |
| dc.contributor.advisor-co1Lattes.fl_str_mv |
http://lattes.cnpq.br/5472065053345636 |
| dc.contributor.referee1.fl_str_mv |
Guimar?es, Dayan Adionel |
| dc.contributor.referee1ID.fl_str_mv |
739.337.836-15 |
| dc.contributor.referee1Lattes.fl_str_mv |
http://lattes.cnpq.br/2503439503631682 |
| dc.contributor.referee2.fl_str_mv |
Ynoguti, Carlos Alberto |
| dc.contributor.referee2ID.fl_str_mv |
156.167.778-70 |
| dc.contributor.referee2Lattes.fl_str_mv |
http://lattes.cnpq.br/5678667205895840 |
| dc.contributor.referee3.fl_str_mv |
Rodrigues Leite, Jo?o Paulo Reus |
| dc.contributor.referee3Lattes.fl_str_mv |
http://lattes.cnpq.br/2049342280490984 |
| dc.contributor.authorLattes.fl_str_mv |
http://lattes.cnpq.br/3060002179584445 |
| dc.contributor.author.fl_str_mv |
Lemes, Alan Lima Lemes, Alan Lima |
| contributor_str_mv |
Guimar?es, Dayan Adionel Masselli, Yvo Marcelo Chiaradia Guimar?es, Dayan Adionel Ynoguti, Carlos Alberto Rodrigues Leite, Jo?o Paulo Reus |
| dc.subject.por.fl_str_mv |
R?dio Cognitivo; GID; Sensoriamento Espectral Cooperativo; Teste de Ader?ncia; Redes Neurais Artificiais |
| topic |
R?dio Cognitivo; GID; Sensoriamento Espectral Cooperativo; Teste de Ader?ncia; Redes Neurais Artificiais Engenharia de Telecomunica??es |
| dc.subject.cnpq.fl_str_mv |
Engenharia de Telecomunica??es |
| description |
Spectral shortage is a major constraint to the advancement of wireless communication systems especially when such systems must provide a high data rate and support high connection density, which is expected from the fifth generation of telecommunications networks. Cognitive radio technology allows opportunistic and efficient use of bands that may be underutilized in the electromagnetic spectrum and, therefore, may be a solution to the aforementioned problem. To determine free spectral bands, cognitive radios use a technique called spectral sensing. Many sensing techniques have been proposed in the literature, but performing the performance evaluation of such techniques and relating them to the systemic parameters is not a trivial task. Recently the GID (Gini index detector) test was proposed for centrelized cooperative spectrum sensing on cognitive radio systems. Its main features are the low computational complexity, the robustness against unequal and dynamical noise and received signal powers. In this dissertation the procedures and the results of the goodness-of-fit of the GID test statistic are presented to diverse distributions of probability. It is demonstrated that the Stable distribution adequately characterizes the statistic under hipotese H0, while the Generalized Extreme Value distribution best applies to H1. Two artificial neural networks are then developed to establish the mapping between the systemic parameters and the parameters that characterize these distributions, allowing theoretical calculations of the performance and the decision threshold of spectral sensing are performed. |
| publishDate |
2019 |
| dc.date.accessioned.fl_str_mv |
2019-09-19T19:23:25Z |
| dc.date.issued.fl_str_mv |
2019-09-10 |
| dc.type.status.fl_str_mv |
info:eu-repo/semantics/publishedVersion |
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info:eu-repo/semantics/masterThesis |
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masterThesis |
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publishedVersion |
| dc.identifier.citation.fl_str_mv |
Lemes, Alan Silva. Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais artificiais. 2019. [89]. Disserta??o( Mestrado em Engenharia de Telecomunica??es) - Instituto Nacional de Telecomunica??es, [Santa Rita do Sapuca?-MG] . |
| dc.identifier.uri.fl_str_mv |
https://tede.inatel.br:8080/tede/handle/tede/187 |
| identifier_str_mv |
Lemes, Alan Silva. Parametriza??o das distribui??es da estat?stica de teste GID sob as hip?teses Ho e H1 via redes neurais artificiais. 2019. [89]. Disserta??o( Mestrado em Engenharia de Telecomunica??es) - Instituto Nacional de Telecomunica??es, [Santa Rita do Sapuca?-MG] . |
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por |
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