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Tests for high dimensional generalized linear models
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Tests for high dimensional generalized linear models
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Tests for high dimensional generalized linear models
Tests for high dimensional generalized linear models
Journal Article

Tests for high dimensional generalized linear models

2016
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Overview
We consider testing regression coefficients in high dimensional generalized linear models. By modifying the test statistic of Goeman and his colleagues for large but fixed dimensional settings, we propose a new test, based on an asymptotic analysis, that is applicable for diverging dimensions and is robust to accommodate a wide range of link functions. The power properties of the tests are evaluated asymptotically under two families of alternative hypotheses. In addition, a test in the presence of nuisance parameters is also proposed. The tests can provide p-values for testing significance of multiple gene sets, whose application is demonstrated in a case-study on lung cancer.

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