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[SpringerBriefs in Regional Science] Quantile Regression for Spatial Data || Linear and Nonparametric Quantile Regression

โœ Scribed by McMillen, Daniel P.


Book ID
120322397
Publisher
Springer Berlin Heidelberg
Year
2012
Tongue
German
Weight
718 KB
Edition
2013
Category
Article
ISBN
3642318150

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โœฆ Synopsis


Quantile regression analysis differs from more conventional regression models in its emphasis on distributions. Whereas standard regression procedures show how the expected value of the dependent variable responds to a change in an explanatory variable, quantile regressions imply predicted changes for the entire distribution of the dependent variable. Despite its advantages, quantile regression is still not commonly used in the analysis of spatial data. The objective of this book is to make quantile regression procedures more accessible for researchers working with spatial data sets. The emphasis is on interpretation of quantile regression results. A series of examples using both simulated and actual data sets shows how readily seemingly complex quantile regression results can be interpreted with sets of well-constructed graphs. Both parametric and nonparametric versions of spatial models are considered in detail.


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