ivdesign: Hypothesis Testing in Cluster-Randomized Encouragement Designs
An implementation of randomization-based hypothesis 
    testing for three different estimands in a cluster-randomized 
    encouragement experiment. The three estimands include (1) testing
    a cluster-level constant proportional treatment effect (Fisher's
    sharp null hypothesis), (2) pooled effect ratio, and (3) average 
    cluster effect ratio. To test the third estimand, user needs to install
    'Gurobi' (>= 9.0.1) optimizer via its R API. Please refer to 
    <https://www.gurobi.com/documentation/9.0/refman/ins_the_r_package.html>.
| Version: | 
0.1.0 | 
| Depends: | 
R (≥ 2.10) | 
| Imports: | 
stats | 
| Suggests: | 
gurobi, Matrix | 
| Published: | 
2020-07-14 | 
| Author: | 
Bo Zhang | 
| Maintainer: | 
Bo Zhang  <bozhan at wharton.upenn.edu> | 
| License: | 
GPL-3 | 
| NeedsCompilation: | 
no | 
| CRAN checks: | 
ivdesign results | 
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