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I've got what I know is a really easy question, but I'm stumped and seem to lack the vocabulary to seek out the answer effectively with the search bar.

I have a data frame full of numbers similar to this (though not of the same class)

 Dat <- structure(c(9L, 9L, 3L, 3L, 2L, 9L, 10L, 5L, 6L, 2L, 4L, 6L, 
 10L, 2L, 9L, 0L, 1L, 8L, 9L, 7L, 7L, 4L, 4L, 3L, 4L, 7L, 7L, 
 1L, 0L, 3L, 6L, 10L, 8L, 3L, 0L, 7L, 7L, 1L, 2L, 8L, 5L, 7L, 
 7L, 8L, 2L, 1L, 10L, 3L, 0L, 2L, 7L, 0L, 0L, 7L, 9L, 8L, 9L, 
 0L, 4L, 4L, 5L, 6L, 6L, 2L, 4L, 1L, 6L, 2L, 4L, 7L, 5L, 2L, 7L, 
 4L, 8L, 3L, 3L, 2L, 5L, 1L, 1L, 3L, 8L, 0L, 1L, 8L, 8L, 1L, 1L, 
 0L, 4L, 4L, 4L, 5L, 6L, 9L, 5L, 2L, 6L, 3L), .Dim = c(10L, 10L
 ))

All I want to do is replace all values > 5 with a 1, and all values less than 5 with a 0. I've gotten as far as getting a frame with TRUE and FALSE, but can't seem to figure out how to replace things.

 Datlog <- Dat > 5

Any help would be greatly appreciated. Thank you.

share|improve this question
    
You mean like (Dat > 5) * 1? – A Handcart And Mohair Oct 9 '13 at 17:00
    
God that's ridiculous. Yes that seems to have worked. Can you explain why/how? – user2510207 Oct 9 '13 at 17:02
up vote 2 down vote accepted

If I read your question correctly, you'll kick yourself for the answer:

(Dat > 5) * 1

TRUE and FALSE in R equate to 1 and 0 respectively. As such, the more semantically correct way to do this would be something like:

out <- as.numeric(Dat > 5)
dim(out) <- dim(Dat)

The two step approach is required in this second approach because when you use as.numeric, the dims of the original data are lost.


One way to replace with different values would be to use factor:

out <- factor((Dat > 5), c(TRUE, FALSE), c("YES", "NO"))
dim(out) <- dim(Dat)

Another way would be basic subsetting and substitution:

out <- Dat
out[out > 5] <- 999
out[out <= 5] <- 0
out
share|improve this answer
    
Ah, I understand, so 1*1 gives me a 1 and 0*1 gives 0. What if I wanted something other than 1 or 0? – user2510207 Oct 9 '13 at 17:03
    
@user2510207, still just the two ranges? Can you give an example of what you might want to replace them with? – A Handcart And Mohair Oct 9 '13 at 17:11
    
You've got it covered above. This is extremely helpful, thank you! – user2510207 Oct 9 '13 at 17:21
2  
And yet a third way would be to increment the 0/1 value by 1 and use as an index into a character vector: c("Low", "High")[1+(out >5)] – 42- Oct 9 '13 at 17:24

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