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I have a data frame m

A   2
B   3
C   4

and I want to create a data frame like

A 1
A 2
B 1
B 2
B 3
C 1
C 2
C 3
C 4

Any help? Thanks a lot in advance

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2  
That doesn't look like a matrix. Do you mean a data frame? A matrix can only hold one of numeric or characters. –  Gavin Simpson Aug 22 '11 at 20:17
1  
Also, in future, don't paste something you think is sufficient to describe your data. Use dput(foo) instead, where foo is your data object. That way we can reproduce exactly the object you are using. –  Gavin Simpson Aug 22 '11 at 20:21
1  
-1 There are several problems here. 1) Your sample data and results don't look like a matrix. 2) Your edit has fundamentally changed the question, after three people have already answered. –  Andrie Aug 22 '11 at 20:28
    
Sorry for changing the question. Newbie. Wont happen again. –  ECII Aug 22 '11 at 20:31

4 Answers 4

up vote 5 down vote accepted

Your original question can be answered by:

text <- LETTERS[1:3]
n <- 2:4

rep(text, times=n)

[1] "A" "A" "B" "B" "B" "C" "C" "C" "C"

Your new question is quite different:

df <- data.frame(
  text <- LETTERS[1:3],
  n <- 2:4
)  

data.frame(
    text = rep(df$text, times=df$n),
    seq  = sequence(df$n)
)

  text seq
1    A   1
2    A   2
3    B   1
4    B   2
5    B   3
6    C   1
7    C   2
8    C   3
9    C   4
share|improve this answer

rep accepts vectors. Try this:

dat <- data.frame(V1 = letters[1:3], V2 = 2:4)

rep(dat[, 1], dat[, 2])


> rep(dat[, 1], dat[, 2])
[1] a a b b b c c c c
share|improve this answer

Assuming m is a data frame:

m <- data.frame(V1 = LETTERS[1:3], V2 = 2:4, stringsAsFactors = FALSE)

This will do what you want:

with(m, rep(V1, times = V2))

e.g.

> with(m, rep(V1, times = V2))
[1] "A" "A" "B" "B" "B" "C" "C" "C" "C"

Edit: To address the edit made by the OP, try the following:

with(m, data.frame(X1 = rep(V1, times = V2), 
                   X2 = unlist(lapply(V2, seq_len))))

Which produces:

>  with(m, data.frame(X1 = rep(V1, times = V2), 
+                        X2 = unlist(lapply(V2, seq_len))))
  X1 X2
1  A  1
2  A  2
3  B  1
4  B  2
5  B  3
6  C  1
7  C  2
8  C  3
9  C  4

Or more succinctly via sequence() — as per @Andrie's Answer (which I also keep forgetting about):

with(m, data.frame(X1 = rep(V1, times = V2), X2 = sequence(V2)))
share|improve this answer

@Andrie's answer is the only one so far that answers your new question. There may be a better way to do this but:

m <- data.frame(V1 = LETTERS[1:3], V2 = 2:4, stringsAsFactors = FALSE)
library(plyr)
ddply(m,"V1",function(x) data.frame(V2=seq(x[,2])))
share|improve this answer
    
Did you mean library(plyr)? Ah, I see that library(reshape) depends on plyr so this gets loaded correctly. –  Andrie Aug 22 '11 at 20:39
    
oops. you're right. edited. –  Ben Bolker Aug 22 '11 at 20:42
1  
A better way to use plyr is to make use of adply instead of ddply, as follows: adply(m,1,function(x) data.frame(V1=x[,1],V2=seq(x[,2])))[,-1]. This means you don't have to construct your m$row column. –  Andrie Aug 22 '11 at 20:43
    
Actually I don't need it anyway because the V1 values are unique ... –  Ben Bolker Aug 22 '11 at 20:46

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