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Incorporating GIS Building Data and Census Housing Statistics for Sub-Block-Level Population Estimation
Authors:Shuo-sheng Wu  Le Wang  Xiaomin Qiu
Institution:1. Texas State University—San Marcos and U.S. Geological Survey ,;2. University of Buffalo, State University of New York ,;3. Missouri State University ,
Abstract:This article presents a deterministic model for sub-block-level population estimation based on the total building volumes derived from geographic information system (GIS) building data and three census block-level housing statistics. To assess the model, we generated artificial blocks by aggregating census block areas and calculating the respective housing statistics. We then applied the model to estimate populations for sub-artificial-block areas and assessed the estimates with census populations of the areas. Our analyses indicate that the average percent error of population estimation for sub-artificial-block areas is comparable to those for sub-census-block areas of the same size relative to associated blocks. The smaller the sub-block-level areas, the higher the population estimation errors. For example, the average percent error for residential areas is approximately 0.11 percent for 100 percent block areas and 35 percent for 5 percent block areas.
Keywords:block population  dasymetric mapping  population estimation  population interpolation  sub-block
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