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#' @title PET (Precision-Effect Test) Method
#'
#' @author František Bartoš \email{f.bartos96@@gmail.com}
#'
#' @description
#' Implements the Precision-Effect Test for publication bias correction.
#' PET regresses effect sizes against standard errors to test for and correct
#' publication bias. The intercept represents the bias-corrected effect size
#' estimate. See
#' \insertCite{stanley2014meta;textual}{PublicationBiasBenchmark} for details.
#'
#' @param method_name Method name (automatically passed)
#' @param data Data frame with yi (effect sizes) and sei (standard errors)
#' @param settings List of method settings (no settings version are implemented)
#'
#' @return Data frame with PET results
#'
#' @references
#' \insertAllCited{}
#'
#' @examples
#' # Generate some example data
#' data <- data.frame(
#' yi = c(0.2, 0.3, 0.1, 0.4, 0.25),
#' sei = c(0.1, 0.15, 0.08, 0.12, 0.09)
#' )
#'
#' # Apply PET method
#' result <- run_method("PET", data)
#' print(result)
#'
#' @export
method.PET <- function(method_name, data, settings = NULL) {
# Fit PET model: effect_size ~ intercept + slope * standard_error
# Extract data
effect_sizes <- data$yi
standard_errors <- data$sei
# Check input
if (length(effect_sizes) < 3)
stop("At least 3 estimates required for PET analysis", call. = FALSE)
if (stats::var(standard_errors) <= 0)
stop("No variance in standard errors", call. = FALSE)
pet_model <- stats::lm(effect_sizes ~ standard_errors, weights = 1/standard_errors^2)
# Extract results
coefficients <- stats::coef(pet_model)
se_coefficients <- summary(pet_model)$coefficients[, "Std. Error"]
p_values <- summary(pet_model)$coefficients[, "Pr(>|t|)"]
# The intercept represents the bias-corrected effect size
estimate <- coefficients[1]
estimate_se <- se_coefficients[1]
estimate_p <- p_values[1]
bias_coefficient <- coefficients[2]
bias_p_value <- p_values[2]
# Calculate confidence interval
estimate_lci <- estimate - 1.96 * estimate_se
estimate_uci <- estimate + 1.96 * estimate_se
convergence <- TRUE
note <- NA
return(data.frame(
method = method_name,
estimate = estimate,
standard_error = estimate_se,
ci_lower = estimate_lci,
ci_upper = estimate_uci,
p_value = estimate_p,
BF = NA,
convergence = convergence,
note = note,
# added columns below
bias_coefficient = bias_coefficient,
bias_p_value = bias_p_value
))
}
#' @export
method_settings.PET <- function(method_name) {
settings <- list(
"default" = list() # no available settings
)
return(settings)
}
#' @export
method_extra_columns.PET <- function(method_name)
c("bias_coefficient", "bias_p_value")
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