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I have a simple matrix, e.g.

test <- matrix(c("u1","p1","u1","p2","u2","p2","u2",
                 "p3","u3","p1","u4","p2","u5","p1",
                 "u5","p3","u6","p3","u7","p4","u7",
                 "p3","u8","p1","u9","p4"),
               ncol=2,byrow=TRUE) 
colnames(test) <- c("user","product")
test1<-as.data.frame(test)

test:

   user   product
1  u1      p1
2  u1      p2
3  u2      p2 
4  u2      p3
5  u3      p1
6  u4      p2
7  u5      p1
8  u5      p3
9  u6      p3
10 u7      p4
11 u7      p3
12 u8      p1
13 u9      p4

I want to count how many users bought product pair together, such as p1&p2, p2& p3...

table(test1$product,test1$product) give me this :

     p1   p2  p3  p4
 p1   4   0   0   0
 p2   0   3   0   0
 p3   0   0   4   0
 p4   0   0   0   2

How can I get the right result as :

     p1   p2  p3  p4
 p1   4   1   1   0
 p2   1   3   1   0
 p3   1   1   4   1
 p4   0   0   1   2
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1  
Note that you currently don't even use the username as input. –  Dennis Jaheruddin Nov 14 '13 at 12:30
    
And if u1 has bought p1, p2, and p3 you want to add 1 to all of (p1,p2), (p2,p3), and (p3,p1) (plus the mirror elements)? The alternative is to have a 3-d matrix... –  Spacedman Nov 14 '13 at 12:32
    
yes, will add 1 to all the pairs –  linus Nov 14 '13 at 13:45

2 Answers 2

up vote 6 down vote accepted

Looking at your desired output, you are looking for the crossprod function:

crossprod(table(test1))
#        product
# product p1 p2 p3 p4
#      p1  4  1  1  0
#      p2  1  3  1  0
#      p3  1  1  4  1
#      p4  0  0  1  2

This is the same as crossprod(table(test1$user, test1$product)) (reflecting Dennis's comment).

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Ananda's solution is superior (it is lighter weight and requires no external package) but I am putting down another. I believe this is called an adjacency matrix (smarter people feel free to edit this if I'm wrong):

library(qdap)
adjmat(table(test1))$adjacency

##        product
## product p1 p2 p3 p4
##      p1  4  1  1  0
##      p2  1  3  1  0
##      p3  1  1  4  1
##      p4  0  0  1  2
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