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Can someone help me modify the function below to check if a number is numeric?

# handy function that checks if something is numeric
check.numeric <- function(N){
  !length(grep("[^[:digit:]]", as.character(N)))
}

check.numeric(3243)
#TRUE
check.numeric("sdds")
#FALSE
check.numeric(3.14)
#FALSE

I want check.numeric() to return TRUE when it's a decimal like 3.14.

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2  
Why is is.numeric not sufficient...? –  joran Nov 9 '12 at 2:52
    
Oh haha I didn't know there was already a built-in R function that did that. thanks, that's exactly the function I need. I still need help though. see comment below –  user1313954 Nov 9 '12 at 2:54
    
@joran the script I'm working on is.numeric(x) where x is assigned the value x<- NA_real_ results in TRUE. How do I fix this? –  user1313954 Nov 9 '12 at 2:58
    
Sounds like you have two things to check: is.numeric and is.na. –  joran Nov 9 '12 at 3:05
3  
I believe that is the point of NA_real_ - to be simultaneously NA and numeric. –  Drew Steen Nov 9 '12 at 3:06

2 Answers 2

up vote 7 down vote accepted

Sounds like you want a function like this:

f <- function(x) is.numeric(x) & !is.na(x)
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that fixed the error thanks again (I'll give you the thumbs up) but now I'm getting a slightly unrelated error: evaluation nested too deeply: infinite recursion / options(expressions=)? –  user1313954 Nov 9 '12 at 3:15
1  
@user1313954 No clue. You'll have to ask about that in a separate question. (But be sure to provide the relevant code and plenty of detail. Based on what you've shared so far, it would be literally impossible for anyone to help.) –  joran Nov 9 '12 at 3:17
    
okay will do. thanks again –  user1313954 Nov 9 '12 at 3:18
    
@user1313954, did you call your function is.numeric and have it call the is.numeric function? if so that would cause the infinite recursion as your function keeps calling itself. Best would be to use a different name for your function, otherwise you could use the :: notation to make sure that you call the correct version of is.numeric. –  Greg Snow Nov 9 '12 at 3:32
    
@GregSnow I did call the function is.numeric and have it call is.numeric function. I changed the function name back to f and compiled again but I'm still getting the same error. Can you remind me again how I would use the :: notation to make sure I'm calling the correct version of is.numeric? –  user1313954 Nov 9 '12 at 3:37

You could use is.finite to test whether the value is numeric and non-NA. This will work for numeric, integer, and complex values (if both real/imaginary parts are finite).

> is.finite(NA)
[1] FALSE
> is.finite(NaN)
[1] FALSE
> is.finite(Inf)
[1] FALSE
> is.finite(1L)
[1] TRUE
> is.finite(1.0)
[1] TRUE
> is.finite("A")
[1] FALSE
> is.finite(pi)
[1] TRUE
> is.finite(1+0i)
[1] TRUE
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thanks Josh. that's even better –  user1313954 Nov 9 '12 at 8:02

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