26

when using dplyr function group_by() and immediately afterwards arrange(), I would expect to get an output where data frame is ordered within groups that I stated in group_by(). My reading of documentation is that this combination should produce such a result, however when I tried it this is not what I get, and googling did not indicate that other people ran into the same issue. Am I wrong in expecting this result?

Here is an example, using the R built-in dataset ToothGrowth:

library(dplyr)
ToothGrowth %>%
  group_by(supp) %>%
  arrange(len)

Running this will produce a data frame where the whole data frame is ordered according to len and not within supp factors.

This is the code that produces the desired output:

ToothGrowth %>%
  group_by(supp) %>%
  do( data.frame(with(data=., .[order(len),] )) )
  • Can you file a bug report please? – hadley Jul 9 '14 at 23:51
  • @hadley Sure thing. – Hrvoje Jul 11 '14 at 12:56
  • Can you please link to this bug report? – Paul Rougieux Jan 20 '15 at 11:09
  • @Paul4forest The issue is closed, so either it is already in the current release or it is still in the development branch. – Hrvoje Jan 21 '15 at 15:59
  • @Hrvoje thanks for the link. According to Hadley's test case, arrange() sorts first by columns in the group_by() function and then by those in the arrange() function. test_that("grouped arrange sorts first by group", { df1 <- mtcars %>% group_by(cyl) %>% arrange(disp) %>% ungroup() df2 <- mtcars %>% arrange(cyl, disp) expect_equal(df1, df2) }) – Paul Rougieux Jan 22 '15 at 10:51
10

I think you want

ToothGrowth %>%
  arrange(supp,len)

The chaining system just replaces nested commands, so first you are grouping, then ordering that grouped result, which breaks the original ordering.

  • 4
    Thanks for the suggestion. Although it fixes my particular problem, I think it would not work in more general cases where you might want to preserve the ordering of original supp variable. – Hrvoje Jul 11 '14 at 12:55
  • then make supp a factor and specify the ordering using levels – JeremyS Jul 15 '14 at 2:12
  • 2
    I want to do exactly this, why can't it just work the way you think it should (i.e. group by first, then arrange) – Alex Sep 2 '14 at 23:35
  • I prefer it this way because it is more explicitly following directions. Before you would ask it to sort a variable and it would be insubordinate until you added an ungroup() that could snip away all the snags keeping the arrange from working as requested. – leerssej Dec 18 '16 at 5:01
32

You can produce the expected behaviour by setting .by_group = TRUE in arrange:

library(dplyr)
ToothGrowth %>%
    group_by(supp) %>%
    arrange(len, .by_group = TRUE)
  • 1
    FWIW this is the answer I was looking for given the stated question. – d8aninja Apr 10 '18 at 15:55
  • that helped me too ! – Dan Dec 19 '18 at 10:23
2

Another way to fix this unexpected order issue while still using the group_by() statement is to convert the grouped_df back to a data frame. group_by is needed for summaries for example:

ToothGrowthMeanLen <-  ToothGrowth %>%
    group_by(supp, dose) %>%
    summarise(meanlen = mean(len)) 

This summary table is not arranged in the order of meanlen

ToothGrowthMeanLen %>%
    arrange(meanlen)

This summary table is arranged in the order of meanlen

ToothGrowthMeanLen %>%
    data.frame() %>%   # Convert to a simple data frame
    arrange(meanlen)

Converting grouped_df back to a data frame is the first way I found to sort a summarised data.frame. But in fact dplyr::ungroup exists for that purpose.

ToothGrowthMeanLen %>%
    ungroup() %>%   # Remove grouping
    arrange(meanlen)
  • Ugly hack but I didn't find better, thanks. – antoine-sac Nov 6 '15 at 14:14
  • 1
    @antoine-sac actually you can use ungroup() which is nicer. – Paul Rougieux Nov 6 '15 at 15:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.