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I have this data.frame:

df <- data.frame(id=c('A','A','B','B','B','C'), amount=c(45,66,99,34,71,22))

id | amount 
-----------
A  |   45   
A  |   66   
B  |   99
B  |   34 
B  |   71
C  |   22

which I need to expand so that each by group in the data.frame is of equal length (filling it out with zeroes), like so:

id | amount 
-----------
A  |   45   
A  |   66  
A  |   0     <- added 
B  |   99
B  |   34 
B  |   71
C  |   22
C  |   0     <- added 
C  |   0     <- added 

What is the most efficient way of doing this?

NOTE

Benchmarking the some of the solutions provided with my actual 1 million row data.frame I got:

             plyr   | data.table  |  unstack
          -----------------------------------
Elapsed:   139.87s  |    0.09s    |   2.00s
share|improve this question
    
Once again, it would be nice to have the code that gives you this data.frame (either using dput or by copying your code) in addition to these tables. –  Arun Jan 31 '13 at 9:09
3  
@Arun, is the first line of code insufficient? –  Roman Luštrik Jan 31 '13 at 9:10
    
aha, dint notice that at all. sincere apologies! –  Arun Jan 31 '13 at 9:13

4 Answers 4

up vote 4 down vote accepted

One way using data.table

df <- structure(list(V1 = structure(c(1L, 1L, 2L, 2L, 2L, 3L), 
          .Label = c("A  ", "B  ", "C  "), class = "factor"), 
          V2 = c(45, 66, 99, 34, 71, 22)), 
          .Names = c("V1", "V2"), 
          class = "data.frame", row.names = c(NA, -6L))

require(data.table)
dt <- data.table(df, key="V1")

# get maximum index
idx <- max(dt[, .N, by=V1]$N)

# get final result
dt[, list(V2 = c(V2, rep(0, idx-length(V2)))), by=V1]

#     V1 V2
# 1: A   45
# 2: A   66
# 3: A    0
# 4: B   99
# 5: B   34
# 6: B   71
# 7: C   22
# 8: C    0
# 9: C    0
share|improve this answer

I'm sure there is a base R solution, but here is one that uses ddply in the plyr package

library(plyr)
##N: How many values should be in each group
N = 3
ddply(df, "id", summarize, 
      amount = c(amount, rep(0, N-length(amount))))

gives:

  id amount
1  A     45
2  A     66
3  A      0
4  B     99
5  B     34
6  B     71
7  C     22
8  C      0
9  C      0
share|improve this answer
    
As long as N is the maximum you don't need a max there? –  Arun Jan 31 '13 at 9:16
1  
@Arun Good point, thanks. –  csgillespie Jan 31 '13 at 9:17

Here's another way in base R using unstack and stack.

# ensure character id col
df <- transform(df, id=as.character(id))
# break into a list by id
u <- unstack(df, amount ~ id)
# get max length
max.len <- max(sapply(u, length))
# pad the short ones with 0s
filled <- lapply(u, function(x) c(x, numeric(max.len - length(x))))
# recombine into data.frame
stack(filled)

#   values ind
# 1     45   A
# 2     66   A
# 3      0   A
# 4     99   B
# 5     34   B
# 6     71   B
# 7     22   C
# 8      0   C
# 9      0   C
share|improve this answer

How about this?

out <- by(df, INDICES = df$id, FUN = function(x, N) {
  x <- droplevels(x)
  lng <- nrow(x)
  dif <- N - lng
  if (dif == 0) return(x)
  make.list <- lapply(1:dif, FUN = function(y) data.frame(id = levels(x$id), amount = 0))
  rbind(x, do.call("rbind", make.list))
  }, N = max(table(df$id))) # N could also be an integer
do.call("rbind", out)

    id amount
A.1  A     45
A.2  A     66
A.3  A      0
B.3  B     99
B.4  B     34
B.5  B     71
C.6  C     22
C.2  C      0
C.3  C      0
share|improve this answer
    
Got this: Error in data.frame(id = levels(x$id), amount = 0) : arguments imply differing number of rows: 0, 1 –  jenswirf Jan 31 '13 at 9:41
    
Add browser() right before droplevels() and go through the function step-by-step and see where it went wrong. I've tried your example and it worked... –  Roman Luštrik Jan 31 '13 at 10:07

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