62

Suppose I have the following data

df = data.frame(name=c("A", "B", "C", "D"), score = c(10, 10, 9, 8))

I want to add a new column with the ranking. This is what I'm doing:

df %>% mutate(ranking = rank(score, ties.method = 'first'))
#   name score ranking
# 1    A    10       3
# 2    B    10       4
# 3    C     9       2
# 4    D     8       1

However, my desired result is:

#   name score ranking
# 1    A    10       1
# 2    B    10       1
# 3    C     9       2
# 4    D     8       3

Clearly rank does not do what I have in mind. What function should I be using?

0

3 Answers 3

96

It sounds like you're looking for dense_rank from "dplyr" -- but applied in a reverse order than what rank normally does.

Try this:

df %>% mutate(rank = dense_rank(desc(score)))
#   name score rank
# 1    A    10    1
# 2    B    10    1
# 3    C     9    2
# 4    D     8    3
4
  • 8
    Prbly want to use desc(score) even though -score works. Hadley has poked me abt that a cpl times.
    – hrbrmstr
    Commented Sep 29, 2014 at 18:45
  • 2
    Is it possible to have the ranking of C be 3 and for D 4?
    – Ignacio
    Commented Sep 29, 2014 at 19:00
  • 8
    @Ignacio instead of using dense_rank use min_rank
    – jalapic
    Commented Sep 29, 2014 at 19:02
  • aaah thank you. Only to say than arrange (desc()) beforedense_rank() doesn't work in that case for items outside the group_by(). It's what I've tried during times.
    – phili_b
    Commented Jan 29, 2019 at 15:57
8

Other solution when you need to apply the rank to all variables (not just one).

df = data.frame(name = c("A","B","C","D"),
                score=c(10,10,9,8), score2 = c(5,1,9,2))

select(df, -name) %>% mutate_all(funs(dense_rank(desc(.))))
2
  • 1
    dplyr has desc(), you don't need inv_d. (It's nice because it works for many data types, not just numeric.) You also don't need to do this in separate steps, you can go all at once: mutate_all(df, funs(dense_rank(desc(.)))) Commented Feb 21, 2017 at 21:28
  • 1
    funs() is now deprecated in dplyr 0.8.0. What is the alternative?
    – user101089
    Commented Aug 22, 2021 at 9:17
0

@user101089 --- you can try out with this alternative way:

df = data.frame(name = c("A","B","C","D"),
                score=c(10,10,9,8), score2 = c(5,1,9,2))

df %>% mutate(rank_score = dense_rank(desc(score)), 
                  rank_score2 = dense_rank(desc(score2)))
1
  • 1
    Thank you for taking the time to post an answer to this question but it is not clear to me how this answer is different to the existing answers. Please edit your post to make it clear how this is answer is different / an improvement. Commented Sep 28, 2021 at 5:10

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