Joint analysis of longitudinal and survival AIDS data with a spatial fraction of long-term survivors: A Bayesian approach
被引:9
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作者:
Martins, Rui
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Escola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
Martins, Rui
[1
]
Silva, Giovani L.
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机构:
CEAUL, Bloco C6 Piso 4, P-1749016 Lisbon, Portugal
Univ Lisbon, Dept Matemat, Inst Super Tecn, Ave Rovisco Pais,1, P-1049001 Lisbon, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
Silva, Giovani L.
[2
,3
]
Andreozzi, Valeska
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机构:
CEAUL, Bloco C6 Piso 4, P-1749016 Lisbon, Portugal
Univ Nova Lisboa, Fac Ciencias Med, Campo Martires Patria,130, P-1169056 Lisbon, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
Andreozzi, Valeska
[2
,4
]
机构:
[1] Escola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
[2] CEAUL, Bloco C6 Piso 4, P-1749016 Lisbon, Portugal
[3] Univ Lisbon, Dept Matemat, Inst Super Tecn, Ave Rovisco Pais,1, P-1049001 Lisbon, Portugal
[4] Univ Nova Lisboa, Fac Ciencias Med, Campo Martires Patria,130, P-1169056 Lisbon, Portugal
A typical survival analysis with time-dependent covariates usually does not take into account the possible random fluctuations or the contamination by measurement errors of the variables. Ignoring these sources of randomness may cause bias in the estimates of the model parameters. One possible way for overcoming that limitation is to consider a longitudinal model for the time-varying covariates jointly with a survival model for the time to the event of interest, thereby taking advantage of the complementary information flowing between these two-model outcomes. We employ here a Bayesian hierarchical approach to jointly model spatial-clustered survival data with a fraction of long-term survivors along with the repeated measurements of CD4(+) T lymphocyte counts for a random sample of 500 HIV/AIDS individuals collected in all the 27 states of Brazil during the period 2002-2006. The proposed Bayesian joint model comprises two parts: on the one hand, a flexible model using Penalized Splines to better capture the nonlinear behavior of the different CD4 profiles over time; on the other hand, a spatial cure model to cope with the set of long-term survivor individuals. Our findings show that joint models considering this set of patients were the ones with the best performance comparatively to the more traditional survival approach. Moreover, the use of spatial frailties allowed us to map the heterogeneity in the disease risk among the Brazilian states.
机构:
Escola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
Martins, Rui
Silva, Giovani L.
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机构:
Univ Lisboa CEAUL, Ctr Estat & Aplicacoes, Bloco C6,Piso 4, P-41749016 Lisbon, Portugal
Univ Lisbon, Inst Super Tecn, Dept Matemat, Ave Rovisco Pais 1, P-11049001 Lisbon, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
Silva, Giovani L.
Andreozzi, Valeska
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机构:
Univ Lisboa CEAUL, Ctr Estat & Aplicacoes, Bloco C6,Piso 4, P-41749016 Lisbon, Portugal
Univ Nova Lisboa, Fac Ciencias Med, Campo Martires Patria 130, P-130116905 Lisbon, PortugalEscola Super Saude Egas Moniz, CiiEM, P-2829511 Monte De Caparica, Caparica, Portugal
机构:
Yunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R ChinaYunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R China
Liu, Wenting
Li, Huiqiong
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Yunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R ChinaYunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R China
Li, Huiqiong
Tang, Anmin
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Yunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R ChinaYunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R China
Tang, Anmin
Cui, Zixin
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Yunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R ChinaYunnan Univ, Yunnan Key Lab Stat Modeling & Data Anal, Kunming 650091, Peoples R China
机构:Hong Kong Polytech Univ, Dept Appl Math, Kowloon, Hong Kong, Peoples R China
Shao, QX
Xian, Z
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机构:
Hong Kong Polytech Univ, Dept Appl Math, Kowloon, Hong Kong, Peoples R ChinaHong Kong Polytech Univ, Dept Appl Math, Kowloon, Hong Kong, Peoples R China