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I would like to select a row with maximum value in each group with dplyr.

Firstly I generate some random data to show my question

df <- expand.grid(list(A = 1:5, B = 1:5, C = 1:5))
df$value <- runif(nrow(df))

In plyr, I could use a custom function to select this row.

ddply(df, .(A, B), function(x) x[which.max(x$value),])

In dplyr, I am using this code to get the maximum value, but not the rows with maximum value (Column C in this case).

df %.% group_by(A, B) %.%
    summarise(max = max(value))

How could I achieve this? Thanks for any suggestion.

R version 3.1.0 (2014-04-10)
Platform: x86_64-w64-mingw32/x64 (64-bit)

[1] LC_COLLATE=English_Australia.1252  LC_CTYPE=English_Australia.1252   
[3] LC_MONETARY=English_Australia.1252 LC_NUMERIC=C                      
[5] LC_TIME=English_Australia.1252    

attached base packages:
[1] stats     graphics  grDevices utils     datasets  methods   base     

other attached packages:
[1] dplyr_0.2  plyr_1.8.1

loaded via a namespace (and not attached):
[1] assertthat_0.1.0.99 parallel_3.1.0      Rcpp_0.11.1        
[4] tools_3.1.0        
share|improve this question
up vote 19 down vote accepted

Try this:

result <- df %.% group_by(A, B) %.%
  filter(value == max(value)) %.%

Seems to work:

  ddply(df, .(A, B), function(x) x[which.max(x$value),])
#[1] TRUE
share|improve this answer
Wonderful. Thanks for your answer. It is working for me. – Bangyou Jun 16 '14 at 6:13
The results are identical in this case because there are no duplicated maximum values present. Otherwise, the filter approach would return all maximum values (rows) per group while the OP's ddply approach with which.max would only return one maximum (the first) per group. To replicate that behavior, another option is to use slice(which.max(value)) in dplyr. – docendo discimus Jun 25 '15 at 7:23

You can use top_n

df %>% group_by(A, B) %>% top_n(n=1)

This will rank by the last column (value) and return the top n=1 rows.

Currently, you can't change the this default without causing an error (See

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