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I have two data.frames:

DF1   
Col1      Col2      ......      ......   Col2000 
 A         H     
 c         d
 d         e  
 n         b   
 e         A    
 b         n    
 H         c    

DF2    
 A
 b        
 c       
 d      
 e        
 n     
 H       

I need simply to match the only one column in DF2 with each column in DF1. I need to match them because I need to know exactly the ranking of the match. Anyway I tried to write a function but since I'm not an R expert something goes wrong in my code:

 lapply(DF1, function(x) match(DF1[,i], DF2[,1]))      

Can anyone help me to write properly the function I need?

Thanks in advance

Best

F.

share|improve this question
1  
sapply( DF1 , function(x) sum( x == DF2[,1] ) ) –  Simon O'Hanlon Dec 19 '13 at 11:10
    
@SimonO101 That doesn't return the ranking. –  Joris Meys Dec 19 '13 at 12:29
    
@JorisMeys at best the question is phrased unclearly. If it is what I think it is (i.e. column with most matches is ranked first) then wrapping the former in rank() should suffice. –  Simon O'Hanlon Dec 19 '13 at 12:30
    
@SimonO101 match() gives the ranking, he's just using function() wrong. –  Joris Meys Dec 19 '13 at 12:37
    
@JorisMeys ok, my understanding of ranking is differnt. I guess I approached it not realising the order of values in DF2[,1] represents the ranking. –  Simon O'Hanlon Dec 19 '13 at 12:38

1 Answer 1

up vote 2 down vote accepted

To get a correct result, you need a correct command :

lapply(DF1, function(x) match(x, DF2[,1]))     

is doing what you're trying to do. Take :

DF1 <- data.frame(
  Col1 = c('A','c','d','n','e','b','H'),
  Col2 = c('H','d','e','b','A','n','c')
  )
DF2 <- data.frame(c('A','b','c','d','e','n','H'))

Then:

> lapply(DF1, function(x) match(x, DF2[,1]))  
$Col1
[1] 1 3 4 6 5 2 7

$Col2
[1] 7 4 5 2 1 6 3
share|improve this answer
    
+1 for mind reading. –  Simon O'Hanlon Dec 19 '13 at 12:38
    
hehe, I call it code reading ;-) –  Joris Meys Dec 19 '13 at 12:40
    
Thank you a lot Joris. –  Fuv8 Dec 19 '13 at 14:58

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