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I have a vector (A, say column names of A bigger matrix) and a matrix(B).

A = q,w,e,r,t

B =

q 1 
y 2
w 3
e 4
u 5
t 6
r 7

I match A with B's first column

matchAB =

      q 1
      w 3
      i 4
      e 5 
      t 6
      r 7

I only need the second column. and use it with A. If you see the order is not the same. where a = q,w,e,r,t. matchAB, becomes, q,w,e,t,r. I don't want to do alphabetical sorting on A. I want matchAB to have the same order as A. Any help ?

Thanks !

As asked by mnel:

dput(a)

a =c("q", "w", "e", "r", "t")

dput(b)

b <- structure(c("q", "1", "y", "2", "w", "3", "i", "4", "e", "5",
    "t", "6", "r", "7"), .Dim = c(2L, 7L), .Dimnames = list(c("bi","bb"), NULL))


ind=which(match(b[1,],a) != 0)

> b[,ind]=

[,1] [,2] [,3] [,4] [,5]

bi "q"  "w"  "e"  "t"  "r"

bb "1"  "3"  "5"  "6"  "7"

So, the output that I want is,

b[,ind]=

[,1] [,2] [,3] [,4] [,5]

bi "q"  "w"  "e"  "r"  "t"

bb "1"  "3"  "5"  "7"  "6"
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1  
Please make your example reproducible by posting the dput(A) and dput(B), and the code you used for matching. Is B really a matrix or a data.frame? –  mnel Nov 2 '12 at 5:56
    
@Arshi it's probably best to add the data back in your original question. –  Tyler Rinker Nov 2 '12 at 6:07
    
Thanks Tyler ! Thanks mnel for dput, I am new to R and didn't know about it. –  Arshi Arora Nov 2 '12 at 6:14
    
It's not doing alphabetical matching. It matches the order of your original data structure. –  Tyler Rinker Nov 2 '12 at 6:49

2 Answers 2

When you post a question it is very helpful to use dput as mnel has suggested.

You question is really about indexing. First I'll show how I'd do it and then break it down:

Your data recreated (please use 1dput` from now on):

B <- read.table(text="q 1 
y 2
w 3
e 4
u 5
t 6
r 7", stringsAsFactors = TRUE)

A <- c('q','w','e','r','t')

How I'd do it:

data.frame(A=A, B=B[B[, 1] %in% A, 2])

Breaking it down: Notice I set the column above as a factor? This should retain your order. First the %in% operator matches the elements in column 1 of B with A and as a factor the order is honored:

B[, 1] %in% A
# >     B[, 1] %in% A
# [1]  TRUE FALSE  TRUE  TRUE FALSE  TRUE  TRUE

Then I use this logical vector inside of a new index of B and select only column 2

B[B[, 1] %in% A, 2]
# [1] 1 3 4 6 7
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Sometimes the order of the arguments needs to be the opposite of what you first think it should be:

> a = c('q','w','e','r','t'); b[, match(a,b[1,])]
#-------
   [,1] [,2] [,3] [,4] [,5]
bi "q"  "w"  "e"  "r"  "t" 
bb "1"  "3"  "5"  "7"  "6" 
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