Nonparametric Analysis of Random Utility Models: Computational Tools for Statistical Testing
Keyword(s):
Kitamura and Stoye (2018) recently proposed a nonparametric statistical test for random utility models of consumer behavior. The test is formulated in terms of linear inequality constraints and a quadratic objective function. While the nonparametric test is conceptually appealing, its practical implementation is computationally challenging. In this paper, we develop a column generation approach to operationalize the test. These novel computational tools generate considerable computational gains in practice, which substantially increases the empirical usefulness of Kitamura and Stoye's statistical test.
1982 ◽
Vol 3
(1)
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pp. 39-56
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1985 ◽
Vol 58
(1)
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pp. 7-20
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1979 ◽
Vol 20
(1)
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pp. 35-52
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