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If I did this, I get correct result:

a <- c("10","28","3")
which(as.numeric(a) == min(as.numeric(a)))
[1] 3

But if there is NAs in the vector, then there is a problem

a <- c("10","28","3","NA")
which(as.numeric(a) == min(as.numeric(a)))
integer(0)
Warning messages:
1: In which(as.numeric(a) == min(as.numeric(a))) :
  NAs introduced by coercion
2: In which(as.numeric(a) == min(as.numeric(a))) :
  NAs introduced by coercion
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There is no need for R in the title, given that you have it tagged as r –  mnel Oct 24 '12 at 1:42

2 Answers 2

up vote 10 down vote accepted

Two things.

First, there's a difference between the character string "NA" and the R data representation for missing values, NA. Remove the quotes around NA in your example to see:

a <- c("10","28","3",NA)

Second, when you're using min with actual missing values (i.e. not the character strings "NA") you'll want to use na.rm = TRUE:

which(as.numeric(a) == min(as.numeric(a),na.rm = TRUE))
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You are right about pointing out the "NA". It is a typo. It is meant to be a NA for missing values. Thank you for your solution. –  Selvam Oct 23 '12 at 6:23
1  
You might also want to use which.min –  hadley Oct 23 '12 at 11:09

Your main problem is not specifying na.rm = TRUE within the call to min

numeric_a <- as.numeric(a)

which(numeric_a == min(numeric_a, na.rm = TRUE))
## [1] 3

Or you can use the which.min which does not require you to specify that the NA values should be removed. This will only give you the first match, not all matches (Thanks @Dason for reminding me to clarify this)

which.min(numeric_a)
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3  
But if you use which.min just note that you'll only get a single result even if there are multiple values that match the minimum value. –  Dason Oct 23 '12 at 1:33
1  
mnel and Dason, thank you both guys for further illustrations on the solution. –  Selvam Oct 23 '12 at 6:24

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