Seminar
Past
Simple Adaptive Size-Exact Testing for Full-Vector and Subvector Inference in Moment Inequality Models
Xiaoxia Shi
- Date14 December 2021
- Time 15h30 - 17h00
- Room Online
Abstract
We propose a simple test for moment inequalities that has exact size in normal models with known variance and has uniformly asymptotically exact size under asymptotic normality. The test compares the quasi-likelihood ratio statistic to a chi-squared critical value, where the degree of freedom is the rank of the inequalities that are active infinite samples. The test requires no simulation and thus is computationally fast andespecially suitable for constructing confidence sets for parameters by test inversion. It uses no tuning parameter for moment selection and yet still adapts to the slackness ofthe moment inequalities. Furthermore, we show how the test can be easily adapted to inference on subvectors in the common empirical setting of conditional moment inequalities with nuisance parameters entering linearly. User-friendly Matlab code to implement the test is provided.
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