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62 lines
1.7 KiB
R
62 lines
1.7 KiB
R
utils::globalVariables(c("df","group","score","strata"))
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#' Generic stroke study outcome
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#'
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#' Includes table 1, grotta bars and ordinal logistic regression plot.
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#' Please just use this function for illustration purposes.
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#' To dos: modify grottaBar and include as own function.
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#'
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#' @param df Data set as data frame
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#' @param group Variable to group by
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#' @param score Outcome measure variable
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#' @param strata Optional variable to stratify by
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#' @param variables String of variable names to include in adjusted OLR-analysis
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#'
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#' @return Returns list with three elements
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#' @export
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#'
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#' @import ggplot2
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#' @importFrom gtsummary tbl_summary
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#' @importFrom gtsummary add_overall
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#' @importFrom MASS polr
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#' @importFrom rankinPlot grottaBar
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#' @importFrom stats as.formula
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#'
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#' @examples
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#' # generic_stroke(df = stRoke::talos, group = "rtreat", score = "mrs_6",
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#' # variables = c("hypertension","diabetes","civil"))
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generic_stroke <-
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function(df,
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group,
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score,
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strata = NULL,
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variables = NULL){
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t1 <- gtsummary::tbl_summary(data = df[, c(group, variables)],
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by = group) |>
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gtsummary::add_overall()
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x <- table(df[, c(group, score, strata)])
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f1 <- rankinPlot::grottaBar(
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x = x,
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groupName = group,
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scoreName = score,
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strataName = strata,
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colourScheme = "custom"
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)
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df[, score] <- factor(df[, score], ordered = TRUE)
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f2 <- ci_plot(MASS::polr(
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as.formula(paste0(score, "~.")),
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data = df[, c(group, score, variables)],
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Hess = TRUE,
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method = "logistic"
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),
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method = "model")
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list("Table 1" = t1,
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"Figure 1" = f1,
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"Figure 2" = f2)
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}
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