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sreg 2.1.0
Estimation and inference
- Corrected the large-strata variance estimator for experiments with
multiple active treatment arms under both individual- and cluster-level
assignment. The estimator now includes the contribution of clusters or
individuals assigned to active arms other than the arm being compared
with control.
- Corrected the small-strata cluster estimator. Point estimation now
uses expanded cluster outcomes, cluster-level covariate means, and
normalization by the mean represented cluster size. The corresponding
variance estimator now incorporates the common random denominator and
the contributions of all treatment arms.
- Corrected mixed-design inference under cluster-level assignment.
Component estimates are now weighted by their shares of the represented
individual population, computed from
Ng, and the variance
estimator includes the variability of these random population
shares.
- Covariates supplied for a mixed design are now used in both its
small- and large-strata components for individual- and cluster-level
assignment. A targeted error explains when the large-strata component
cannot identify the requested treatment-by-stratum adjustment and
recommends reducing the covariate set or using
X = NULL.
- Improved HC1 handling in degenerate multi-treatment settings by
reverting to the unadjusted variance estimate when the finite-sample
correction is undefined.
Design support and interface
- Added the optional
k argument to sreg().
It validates the common stratum size in uniform small-strata designs and
identifies the small-stratum size in general mixed designs, extending
mixed-design support beyond matched pairs and triplets to general
k-tuples.
- Improved automatic design classification, validation messages, and
warnings for small- and mixed-strata designs under both individual- and
cluster-level assignment.
- Standardized user-facing output to use the term “large strata”
rather than “big strata.”
Data generation
- Extended
sreg.rgen() to generate mixed designs through
the new mixed.strata and n.small arguments for
both individual- and cluster-level assignment.
- Added optional stratum-specific allocation probabilities, stratum
effects, and treatment effects through
allocation.probs,
stratum.effects, and
treatment.effects.by.stratum for large-strata
individual-level designs.
- Clarified that
n counts clusters when
cluster = TRUE, strengthened input validation, and
corrected large-strata cluster generation so that
is.cov = FALSE no longer returns covariate columns.
Documentation and
maintenance
- Substantially expanded the function documentation, examples, README,
and introductory vignette to cover large-, small-, mixed-, and
cluster-randomized designs and the S3 print and plot methods.
- Corrected references and documented the structure of returned
objects, cluster-size handling, cluster-level covariate aggregation, and
mixed-design adjustment behavior.
- Expanded the automated test suite for multi-arm variance estimation,
general k-tuple and mixed designs, cluster estimators, data generation,
design classification, and adjustment diagnostics.
sreg 2.0.2
sreg 2.0.1
- CRAN release of the first stable version of sreg 2.0 # sreg
2.0.0
- Major redesign of the package to support small strata
designs (e.g., matched pairs and n-tuples), including correct
estimators under both individual-level and
cluster-level treatment assignment.
- Added full support for mixed designs combining
small and large strata, with appropriate estimators implemented.
- Introduced a new S3 plot method
(
plot.sreg) for visualizing estimated treatment effects and
confidence intervals for objects of class sreg.
- Multiple bug fixes and internal improvements for stability and
consistency.
sreg 1.0.1.9000
(development version)
- Ongoing development version.
sreg 1.0.1
- Fixed a bug in the
sreg function that caused it to
return output for the unadjusted estimator instead of the adjusted
estimator when X contained a single covariate.
- Minor improvements and bug fixes.
sreg 1.0.0
These binaries (installable software) and packages are in development.
They may not be fully stable and should be used with caution. We make no claims about them.