164

I have a ggplot command

ggplot( rates.by.groups, aes(x=name, y=rate, colour=majr, group=majr) )

inside a function. But I would like to be able to use a parameter of the function to pick out the column to use as colour and group. I.e. I would like something like this

f <- function( column ) {
    ...
    ggplot( rates.by.groups, aes(x=name, y=rate, colour= ??? , group=??? ) )
}

So that the column used in the ggplot is determined by the parameter. E.g. for f("majr") we get the effect of

ggplot( rates.by.groups, aes(x=name, y=rate, colour=majr, group=majr) )

but for f("gender") we get the effect of

  ggplot( rates.by.groups, aes(x=name, y=rate, colour=gender, group=gender) )

Some things I tried:

ggplot( rates.by.groups, aes(x=name, y=rate, colour= columnName , group=columnName ) )

did not work. Nor did

e <- environment() 
ggplot( rates.by.groups, aes(x=name, y=rate, colour= columnName , group=columnName ), environment=e )

6 Answers 6

218

You can use aes_string:

f <- function( column ) {
    ...
    ggplot( rates.by.groups, aes_string(x="name", y="rate", colour= column,
                                        group=column ) )
}

as long as you pass the column to the function as a string (f("majr") rather than f(majr)). Also note that we changed the other columns, "name" and "rate", to be strings.

If for whatever reason you'd rather not use aes_string, you could change it to (the somewhat more cumbersome):

    ggplot( rates.by.groups, aes(x=name, y=rate, colour= get(column),
                                        group=get(column) ) )
5
  • It's worth saying that you shouldn't/can't do aes_string(x = rates.by.groups$name..., and anyway you don't need to since you already passed the ggplot(data = rates.by.groups... argument. (The issue in this question)
    – smci
    Jun 12, 2018 at 3:09
  • 6
    Just adding a note to point people down to Moody_Mudskipper's answer with updates for ggplot2 version 3.0.0 Apr 4, 2019 at 15:31
  • @buncis That's not true, quoting "column_name" or "column" wouldn't work Jul 12, 2019 at 18:32
  • @DavidRobinson sorry my mistake, I don't see the code is wrapped on a function with parameter, gonna delete my comment
    – buncis
    Jul 15, 2019 at 7:49
  • 1
    "cumbersome"? Non-standard evaluation in R is ironically the most cumbersome "feature" I have ever encountered in a programming language. Truly maddening. Feb 4, 2020 at 18:10
79

From the release notes of ggplot2 V3.0.0 :

aes() now supports quasiquotation so that you can use !!, !!!, and :=. This replaces aes_() and aes_string() which are now soft-deprecated (but will remain around for a long time).

The idiomatic way now would be to convert to a symbol the string that the variable contains, using sym()(which is almost the same as base aliases as.name() / as.symbol()), and unquote it using !!

Simulating OP's data we can do :

library(tidyverse)
rates.by.groups <- data.frame(
  name = LETTERS[1:3],
  rate = 1:3,
  mjr = LETTERS[c(4,4,5)],
  gender = c("M","F","F")
)

f <- function(column) {
  column <- sym(column)
  ggplot(rates.by.groups, 
         aes(x = name, 
             y = rate, 
             fill  = !!column, 
             group = !!column)) +
    geom_col()
}

f("gender")
f("mjr")
x <- "gender"
f(x)

If we'd rather feed raw names to the function we can do:

f2 <- function(column) {
  column <- ensym(column)
  ggplot(rates.by.groups, 
         aes(x = name, 
             y = rate, 
             fill  = !!column, 
             group = !!column)) +
    geom_col()
}

It will work with names a.k.a. symbols AND with string literals

f2(gender)
f2(mjr)
f2("gender")
f2("mjr")

As Lionel says about ensym():

it's meant to mimic the syntax of arguments where you can supply both in the LHS, e.g. list(bare = 1, "quoted" = 2)


A note on enquo()

enquo()quotes the expression (not necessarily a symbol) fed to the argument, it doesn't convert a string literal to a symbol as ensym() does so it might be less adapted here, but we can do :

f3 <- function(column) {
  column <- enquo(column)
  ggplot(rates.by.groups, 
         aes(x = name, 
             y = rate, 
             fill  = !!column, 
             group = !!column)) +
    geom_col()
}

f3(gender)
f2(mjr)
5
  • 32
    This tidyeval stuff is so annoying. The documentation for aes() itself talks about enquo() but it doesn't work. And whoever heard of ensym() before? BIG SIGH Jun 4, 2019 at 14:37
  • @Moody_Mudskipper For f2, all four examples work, and so does capturing the column name in a variable (i.e. aname <- "mjr"; f2(aname)). If I add code to manipulate the data frame using dplyr it attempts to find a column using the variable name and not the string in the variable name. In other words, how do I get rates.by.groups %>% group_by(!!column)... to work and still support the three ways of calling f2 ?
    – steveb
    Aug 20, 2019 at 21:42
  • 1
    "so does capturing the column name in a variable" : it doesn't fail but it doesn't return the same result, ensym is designed to deal with arguments provided as names, and tolerate quotes around them. I believe you would like to treat the argument as a name, and to fall back on the value if the name is not found. This is actually what happens with select, but not with group_by ... It's possible to hack around it but not obvious. If it's important to you I think it would deserve its own question. Aug 20, 2019 at 23:09
  • @Moody_Mudskipper Thanks. I was using both select and group_by so that was likely the issue. I can create a new question, but I need to come up with a simple example and check to see if it has been answered. I can post it if not.
    – steveb
    Aug 21, 2019 at 1:17
  • 1
    How to use !! in case of facet_grid? It works with facet_grid(cols = vars(!!column)) but throws an error with facet_grid(~ !!column)
    – mRiddle
    Oct 20, 2019 at 6:57
39

Another option (ggplot2 > 3.0.0) is to use the tidy evaluation pronoun .data to slice the chosen variable/column from the rates.by.groups data frame.

See also this answer

library(ggplot2)
theme_set(theme_classic(base_size = 14))

# created by @Moody_Mudskipper
rates.by.groups <- data.frame(
  name = LETTERS[1:3],
  rate = 1:3,
  mjr = LETTERS[c(4, 4, 5)],
  gender = c("M", "F", "F")
)

f1 <- function(df, column) {
  gg <- ggplot(df, 
         aes(x = name, 
             y = rate, 
             fill  = .data[[column]], 
             group = .data[[column]])) +
    geom_col() +
    labs(fill = column)
  return(gg)
}

plot_list <- lapply(list("gender", "mjr"), function(x){ f1(rates.by.groups, x) })
plot_list
#> [[1]]

#> 
#> [[2]]

# combine all plots
library(egg)
ggarrange(plots = plot_list,
          nrow = 2,
          labels = c('A)', 'B)'))

Created on 2019-04-04 by the reprex package (v0.2.1.9000)

2
18

Try using aes_string instead of aes.

2
  • 7
    This is great advice but can you tell them why? aes_string makes you use "" for non-variables and you use variables unquotes. aes_string(x = "foo", y = "fee", group = variable)
    – mtelesha
    Jun 27, 2018 at 18:32
  • @mtelesha maybe because the variable have string as its value
    – buncis
    Jul 15, 2019 at 12:43
17

Do two things

  1. Turn the column name into a symbol with sym()
  2. Prepend !! to the symbol when you want to use it

Example

my_col <- sym("Petal.Length")

iris %>% 
  ggplot(aes(x = Sepal.Length, y = !!my_col)) +
  geom_point()
2

Using aes_string does fix this problem, but does face an issue when adding error bars geom_errorbar. Below is a simple solution.

#Identify your variables using the names of your columns indie your dataset
 xaxis   <- "Independent"   
 yaxis   <- "Dependent"
 sd      <- "error"

#Specify error bar range (in 'a-b' not 'a'-'b')
 range   <- c(yaxis, sd)                                #using c(X, y) allows use of quotation marks inside formula
 yerrbar <- aes_string(ymin=paste(range, collapse='-'), 
                       ymax=paste(range, collapse='+'))


#Build the plot
  ggplot(data=Dataset, aes_string(x=xaxis, y=yaxis)) +
    geom_errorbar(mapping=yerrbar, width=15, colour="#73777a", size = 0.5) +
    geom_point   (shape=21)

Bonus, you can also add facets to your plot using these lines inside the ggplot:

facet_grid(formula(paste(Variable1, "~", Variable2)))

This script was modified from this original post: ggplot2 - Error bars using a custom function

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