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I have yet another question which I have been trying to solve for the past few hours unsuccessfully. It involves some dataset manipulation in R. Imagine that I have the following sample dataset:

a,b,v,r
1,3,1,0
2,5,1,1
3,6,0,1
1,5,1,0
2,4,1,1
3,6,0,1

I need to create a third column (say m) by comparing the values of the columns [v,r] by the following rules. If v = 1, r = 0 then m = 0. If v = 1, r = 1, then m = 1 and if v = 0, r = 1, then m = 2. [v,r] can never take the values (0,0).

I am wondering how I can create the third column and also delete the columns v,r in one line. Thank you !

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3 Answers 3

up vote 5 down vote accepted

Using data.table (1.8.8):

DT <- data.table(DF)
DT[, `:=`(m = (!v) * 1 + r, v = NULL, r=NULL)]
#    a b m
# 1: 1 3 0
# 2: 2 5 1
# 3: 3 6 2
# 4: 1 5 0
# 5: 2 4 1
# 6: 3 6 2
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2  
Very nice with the (!v) * 1 + r! –  Ananda Mahto Mar 19 '13 at 7:33
    
+1 for figuring out v, r and m relationship.. I was thinking on lines of binary numbers :p –  Chinmay Patil Mar 19 '13 at 7:38
    
Your solutions is giving me the following error: Error: unexpected '=' in "gbbc1[ , :=(gbbc1$exp =" where gbbc1 is the name of the dataset and exp is the required column which doesn't yet exist. –  Shion Mar 19 '13 at 19:24
1  
why are you using gbbc1$exp instead of just exp?? If you see my post, I don't use dt$ inside dt[.]. –  Arun Mar 19 '13 at 19:32
1  
Actually, this just solved my problem ! I completely overlooked that. Thank you so much ! –  Shion Mar 19 '13 at 19:37

It's not one line (so not nearly as snappy as @Arun's data.table solution) but here is one approach with within and ifelse:

within(mydf, {
  m <- ifelse(v == 1 & r == 0, 0, ifelse(v == 1 & r == 1, 1, 2))
  rm(v, r)
})
#   a b m
# 1 1 3 0
# 2 2 5 1
# 3 3 6 2
# 4 1 5 0
# 5 2 4 1
# 6 3 6 2
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1  
+1, this can still be done in 1 line by using ; between two statements ;) –  Chinmay Patil Mar 19 '13 at 7:39
    
This answer is also good but I selected the above because on my large dataset it is much faster and doesn't print out the rows. Thanks for helping ! –  Shion Mar 19 '13 at 19:41

using transform from base packages

DF <- read.csv(textConnection("a,b,v,r\n1,3,1,0\n2,5,1,1\n3,6,0,1\n1,5,1,0\n2,4,1,1\n3,6,0,1"), header = TRUE)

transform(DF, m = (!v) * 1 + r, v = NULL, r = NULL)
##   a b m
## 1 1 3 0
## 2 2 5 1
## 3 3 6 2
## 4 1 5 0
## 5 2 4 1
## 6 3 6 2
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