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Check possible p, t, and SD of difference score for within-subject means and SDs over a range of r-values
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library(dplyr) | |
library(faux) | |
library(tidyr) | |
library(purrr) | |
library(ggplot2) | |
library(glue) | |
within_t <- function(n = 100, mu1 = 0, mu2 = 0, sd1 = 1, sd2 = 1, r = 0, | |
alternative = c("two.sided", "less", "greater")) { | |
x <- faux::rnorm_multi(n = n, | |
mu = c(A = mu1, B = mu2), | |
sd = c(sd1, sd2), | |
r = r, | |
empirical = TRUE) | |
test <- t.test(x$A, x$B, | |
paired = TRUE, | |
alternative = match.arg(alternative)) | |
# test info | |
list( | |
diff_mean = mu2 - mu1, | |
diff_sd = sd(x$A - x$B), | |
t = test$statistic[[1]], | |
p = test$p.value | |
) | |
} | |
check_p <- function(n = 100, mu1 = 0, mu2 = 0, sd1 = 1, sd2 = 1, | |
r_min = -.99, r_max = .99, r_digits = 2, | |
alternative = c("two.sided", "less"), | |
reported_p = NULL, plot_type = c("p", "t", "diff_sd"), | |
save = NULL) { | |
plot_type <- match.arg(plot_type) | |
# make sure r-values are in real range | |
r_min <- max(-.99, r_min) | |
r_max <- min(.99, r_max) | |
# set up params | |
params <- tidyr::crossing( | |
n = n, | |
mu1 = mu1, | |
mu2 = mu2, | |
sd1 = sd1, | |
sd2 = sd2, | |
r = seq(r_min, r_max, 10^(-r_digits)), | |
alternative = alternative | |
) %>% | |
# calculate p and t-values | |
dplyr::bind_cols(purrr::pmap_df(., within_t)) | |
# get plausible p-values if reported_p is set | |
if (!is.null(reported_p)) { | |
params <- params %>% | |
dplyr::mutate(plausible = | |
abs(round(p, r_digits) - reported_p) < | |
10^(-r_digits)) | |
r_range <- r_max - r_min | |
p_x <- params %>% | |
filter(plausible) %>% | |
summarise(max = max(r), | |
min = min(r)) %>% | |
mutate(x = ifelse(max > .5, r_min + r_range*.1, r_max - r_range*.1)) %>% | |
pull(x) | |
} | |
multi <- list(mu1 = mu1, mu2 = mu2, sd1 = sd1, sd2 = sd2, n = n, | |
alternative = alternative) %>% | |
lapply(length) | |
grp <- names(multi[multi>1]) | |
if (length(grp) == 0) grp <- "all" | |
# plot the results | |
plot_n <- paste(n, collapse = ',') | |
plot_m1 <- round(mu1, 2) %>% paste(collapse = ',') | |
plot_sd1 <- round(sd1, 2) %>% paste(collapse = ',') | |
plot_m2 <- round(mu2, 2) %>% paste(collapse = ',') | |
plot_sd2 <- round(sd2, 2) %>% paste(collapse = ',') | |
plot <- params %>% | |
tidyr::unite(groups, grp, sep = "_", remove = FALSE) %>% | |
ggplot() + | |
labs( | |
title = glue("N = {plot_n}; M1 = {plot_m1} ({plot_sd1}); M2 = {plot_m2} ({plot_sd2})"), | |
color = paste(grp, collapse = ", "), | |
x = "r-value", | |
y = switch(plot_type, | |
p = "p-value", | |
t = "t-value", | |
diff_sd = "SD of the diference score") | |
) | |
# add reference line for p-value | |
if (plot_type == "p" && !is.null(reported_p)) { | |
plot <- plot + | |
geom_hline(yintercept = reported_p, alpha = 0.6) + | |
annotate("label", x = p_x, y = reported_p, label = glue("reported\np = {reported_p}")) | |
} | |
plot <- plot + | |
geom_line(aes(x = r, y = .data[[plot_type]], color = groups), | |
size = 1) | |
if (is.null(save)) { | |
print(plot) | |
} else { | |
ggsave(filename = save, plot = plot, width = 5, height = 5) | |
} | |
invisible(params) | |
} | |
# test | |
params <- check_p(n = 24, | |
mu1 = 25, mu2 = 32, | |
sd1 = 30.51, sd2 = 30.29, | |
plot_type = "p", | |
reported_p = 0.03) |
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