I want to arrange N ggplot (each one is facetted) on a grid with grid.arrange.


plots <- lapply(unique(mtcars$cyl), function(cyl) {
    data <- mtcars %>% filter(cyl == cyl)
    ggplot(data, aes(x=mpg, y=hp))+
        geom_point(color = "blue")+
        facet_wrap(.~carb)}) %>% 
    do.call(grid.arrange, .)
do.call(grid.arrange, plots )

The problem is that all the plots are based on the entire dataset and they render the same plot, while they shuold be different as I filter them in line

data <- mtcars %>% filter(cyl == cyl).

  • 2
    Scoping issue. Just use data <- mtcars[mtcars$cyl == cyl,]. If you must use dplyr you need to tell filter from where it should take the second cyl. Or just use a different symbol for the parameter of your anonymous function. – Roland May 23 at 7:38

filter deals with cyl too letteral and treated as a string, therefore cyl==cyl is TRUE for the entire dataset. You can solve this by unquote cyl using !! or use another variable name in the function e.g. x.

#Option 1
data <- mtcars %>% filter(cyl == !!cyl)
#Option 2
... function(x) {
    data <- mtcars %>% filter(cyl == x)

Here is a tidyverse approach


group_plots <- mtcars %>%
                 group_split(cyl) %>%
                 map(~ggplot(., aes(x = mpg, y = hp))+
                 geom_point(color = "blue") +

do.call(gridExtra::grid.arrange, group_plots)

enter image description here


Try use split() first:


l <- split(mtcars, mtcars$cyl) # divide based on cyl in a list

plots <- lapply(l, function(x) {
  ggplot(x, aes(x=mpg, y=hp)) +
    geom_point(color = "blue") +
}) # call lapply() on each element

do.call(grid.arrange, plots)  

enter image description here

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