tests/testthat/_snaps/two_sample_nonparametric.md

t_nonparametric works - between-subjects design

Code
  select(df, -expression)
Output
  # A tibble: 1 x 13
    parameter1 parameter2 statistic   p.value method                 alternative
    <chr>      <chr>          <dbl>     <dbl> <chr>                  <chr>      
  1 wt         am              230. 0.0000435 Wilcoxon rank sum test two.sided  
    effectsize        estimate conf.level conf.low conf.high conf.method n.obs
    <chr>                <dbl>      <dbl>    <dbl>     <dbl> <chr>       <int>
  1 r (rank biserial)    0.866        0.9    0.749     0.931 normal         32
Code
  df[["expression"]]
Output
  [[1]]
  list(italic("W")["Mann-Whitney"] == "230.500", italic(p) == "4.347e-05", 
      widehat(italic("r"))["biserial"]^"rank" == "0.866", CI["90%"] ~ 
          "[" * "0.749", "0.931" * "]", italic("n")["obs"] == "32")

nonparametric works - within-subjects design

Code
  select(df, -expression)
Output
  # A tibble: 1 x 13
    parameter1 parameter2 statistic  p.value method                    alternative
    <chr>      <chr>          <dbl>    <dbl> <chr>                     <chr>      
  1 desire     condition       1796 0.000430 Wilcoxon signed rank test two.sided  
    effectsize        estimate conf.level conf.low conf.high conf.method n.obs
    <chr>                <dbl>      <dbl>    <dbl>     <dbl> <chr>       <int>
  1 r (rank biserial)    0.487       0.99    0.215     0.690 normal         90
Code
  df[["expression"]]
Output
  [[1]]
  list(italic("V")["Wilcoxon"] == "1796.00000", italic(p) == "0.00043", 
      widehat(italic("r"))["biserial"]^"rank" == "0.48737", CI["99%"] ~ 
          "[" * "0.21481", "0.68950" * "]", italic("n")["pairs"] == 
          "90")


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statsExpressions documentation built on Sept. 12, 2023, 5:07 p.m.