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I have a data frame with each row representing a sequence of schools

edu <- read.table(header=TRUE, text="Elem Mid High
e1 m1 h1
e2 m2 h2
e1 m2 h2
e3 m1 h1")

I'd like to transform this into a edge list

  s1 s2
1 e1 m1
2 e2 m2
3 e1 m2
4 e3 m1
5 m1 h1
6 m2 h2
7 m2 h2
8 m1 h1

for a directed graph (via the igraph package).

Here's how I do it:

e2m <- edu[,1:2]
m2h <- edu[,2:3]
colnames(e2m) <- c("s1", "s2")
colnames(m2h) <- c("s1", "s2")
schools <- rbind(e2m,m2e)

"schools" contains what I want, but it is iterative and becomes cumbersome if I want to add a fourth column (e.g. "Uni"). What is the vectorized way to do this?

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8  
Can I say this is a great question in that you (1) asked a question, (2) provide a small working data set, (3) show desired output and (4) what you're currently doing. +1 –  Tyler Rinker Feb 12 '13 at 2:43
    
I'm woefully unskilled in its use, but isn't this what melt -- recast does? –  Carl Witthoft Feb 12 '13 at 12:45
    
@Carl, I thought the same as well, but it's not the case, at least not straightforward. Note that the first column of the transformed data.frame has both the first column and second column from edu. –  Arun Feb 12 '13 at 14:11
    
@Arun : thanks. Save me the trouble of trying to code it up. –  Carl Witthoft Feb 12 '13 at 14:20
1  
@Carl, melt|recast|merge was my thought as well and I did try to code it up, which ended in tears... All: thanks for the inputs. I tried them all with a 'Uni'-fied dataframe and they all worked great. I don't know which one to pick... –  schnee Feb 12 '13 at 14:30
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4 Answers

up vote 11 down vote accepted

Here is a possible solution:

len <- seq_along(edu)
a <- head(len, -1)
b <- tail(len, -1)

data.frame(s1=as.character(unlist(edu[, a])), s2=as.character(unlist(edu[, b])))
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The first two aren't quite right (too many combinations are printed). "Edit2" is correct and awesome. –  Matthew Lundberg Feb 12 '13 at 2:58
    
+1 for the last one! –  agstudy Feb 12 '13 at 2:58
    
+1 Brilliant! . –  Ricardo Saporta Feb 12 '13 at 5:44
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Directly translating the OP's code into an apply. This isn't vectorized:

do.call(rbind, lapply(seq(ncol(edu)-1), FUN=function(x){
  r <- edu[,x:(x+1)]
  colnames(r) <- c('s1', 's2')
  r
}

))
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Working off of @Tyler's Method:

# assuming a new column added
edu$Uni <- as.factor(c("u1", "u2", "u1", "u1"))  

.

rows  <- nrow(edu)
total <- prod(dim(edu))  # ie: nrow(edu) * ncol(edu)  

X <- as.character(unlist(edu))
data.frame(s1=X[1:(total-rows)],  s2=X[(rows+1):total])

Results:

   s1 s2
1  e1 m1
2  e2 m2
3  e1 m2
4  e3 m1
5  m1 h1
6  m2 h2
7  m2 h2
8  m1 h1
9  h1 u1  <~~~ Added "Uni" column
10 h2 u2  <~~~ Added "Uni" column
11 h2 u1  <~~~ Added "Uni" column
12 h1 u1  <~~~ Added "Uni" column
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My first attempts produced 12 rows which is too many. –  Tyler Rinker Feb 12 '13 at 6:01
    
notice I added a column, hence 12 instead of 8 –  Ricardo Saporta Feb 12 '13 at 6:07
    
Oh got it :) +1 –  Tyler Rinker Feb 12 '13 at 6:16
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An alternative with a matrix output, required by the igraph functions.

t(
  matrix(
   apply(edu,1,function(x) x[c(1,rep(2:(length(x)-1),each=2),length(x))]),
   nrow=2
        )
 )

Result:

     [,1] [,2]
[1,] "e1" "m1"
[2,] "m1" "h1"
[3,] "e2" "m2"
[4,] "m2" "h2"
[5,] "e1" "m2"
[6,] "m2" "h2"
[7,] "e3" "m1"
[8,] "m1" "h1"

And convert to a graph:

> graph.edgelist(result)
IGRAPH DN-- 7 8 -- 
+ attr: name (v/c)
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