Literature DB >> 15054024

Generalized additive models for cancer mapping with incomplete covariates.

Jonathan L French1, Matthew P Wand.   

Abstract

Maps depicting cancer incidence rates have become useful tools in public health research, giving valuable information about the spatial variation in rates of disease. Typically, these maps are generated using count data aggregated over areas such as counties or census blocks. However, with the proliferation of geographic information systems and related databases, it is becoming easier to obtain exact spatial locations for the cancer cases and suitable control subjects. The use of such point data allows us to adjust for individual-level covariates, such as age and smoking status, when estimating the spatial variation in disease risk. Unfortunately, such covariate information is often subject to missingness. We propose a method for mapping cancer risk when covariates are not completely observed. We model these data using a logistic generalized additive model. Estimates of the linear and non-linear effects are obtained using a mixed effects model representation. We develop an EM algorithm to account for missing data and the random effects. Since the expectation step involves an intractable integral, we estimate the E-step with a Laplace approximation. This framework provides a general method for handling missing covariate values when fitting generalized additive models. We illustrate our method through an analysis of cancer incidence data from Cape Cod, Massachusetts. These analyses demonstrate that standard complete-case methods can yield biased estimates of the spatial variation of cancer risk.

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Year:  2004        PMID: 15054024     DOI: 10.1093/biostatistics/5.2.177

Source DB:  PubMed          Journal:  Biostatistics        ISSN: 1465-4644            Impact factor:   5.899


  15 in total

1.  Semiparametric regression during 2003-2007.

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2.  Combining area-based and individual-level data in the geostatistical mapping of late-stage cancer incidence.

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Journal:  Spat Spatiotemporal Epidemiol       Date:  2009 Oct-Dec

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Review 4.  Risk assessment models to estimate cancer probabilities.

Authors:  Constance M Johnson; Derek Smolenski
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5.  Bayesian spatial modeling of disease risk in relation to multivariate environmental risk fields.

Authors:  Ji-in Kim; Andrew B Lawson; Suzanne McDermott; C Marjorie Aelion
Journal:  Stat Med       Date:  2010-01-15       Impact factor: 2.373

6.  A Bayesian semiparametric approach with change points for spatial ordinal data.

Authors:  Bo Cai; Andrew B Lawson; Suzanne McDermott; C Marjorie Aelion
Journal:  Stat Methods Med Res       Date:  2012-10-14       Impact factor: 3.021

7.  Spatial analysis of lung, colorectal, and breast cancer on Cape Cod: an application of generalized additive models to case-control data.

Authors:  Verónica Vieira; Thomas Webster; Janice Weinberg; Ann Aschengrau; David Ozonoff
Journal:  Environ Health       Date:  2005-06-14       Impact factor: 5.984

8.  Method for mapping population-based case-control studies: an application using generalized additive models.

Authors:  Thomas Webster; Verónica Vieira; Janice Weinberg; Ann Aschengrau
Journal:  Int J Health Geogr       Date:  2006-06-09       Impact factor: 3.918

9.  Spatial analysis of bladder, kidney, and pancreatic cancer on upper Cape Cod: an application of generalized additive models to case-control data.

Authors:  Verónica Vieira; Thomas Webster; Janice Weinberg; Ann Aschengrau
Journal:  Environ Health       Date:  2009-02-10       Impact factor: 5.984

10.  Spatial-temporal analysis of breast cancer in upper Cape Cod, Massachusetts.

Authors:  Verónica M Vieira; Thomas F Webster; Janice M Weinberg; Ann Aschengrau
Journal:  Int J Health Geogr       Date:  2008-08-13       Impact factor: 3.918

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