Publication | Open Access
Sufficient dimensions reduction in regressions with categorical predictors
161
Citations
24
References
2002
Year
EngineeringMultivariate AnalysisData ScienceHigh-dimensional MethodCategorical Predictor VariablesMultidimensional AnalysisSufficient Dimension ReductionStatistical InferenceSliced Inverse RegressionRegression AnalysisDimensionality ReductionFunctional Data AnalysisStatisticsCategorical ModelSufficient Dimensions Reduction
In this article, we describe how the theory of sufficient dimension reduction, and a well-known inference method for it (sliced inverse regression), can be extended to regression analyses involving both quantitative and categorical predictor variables. As statistics faces an increasing need for effective analysis strategies for high-dimensional data, the results we present significantly widen the applicative scope of sufficient dimension reduction and open the way for a new class of theoretical and methodological developments.
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