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I want to test a vector of character strings and determine if each one contains elements that are numeric or symbols (ie I want to know if a string is more than just alpha characters and spaces). I've solved it here but am wondering if there's a more efficient way (in R regex).

x <- c("ff d fdf4f", "fve dvgf", "vfev!", "rcvce rc&")
nchar(gsub("[a-zA-Z]|\\s+", "", x)) > 0
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2  
I'm no regex expert, but I probably would have gone for more of an any(grepl()) sort of solution. No idea if it's more efficient. –  joran Nov 26 '12 at 2:30
    
I already gave an answer that is much better than this but a simple improvement (that doesn't gain too much) would be gsub("[a-zA-Z]|\\s+", "", x) != "" –  Dason Nov 26 '12 at 3:09
1  
Getting rid of the | in the regular expression makes the gsub solution significantly faster (22, 18 microseconds each). But the grepl solution is a clear winner at 11 microseconds. –  Matthew Lundberg Nov 26 '12 at 3:11
    
Ahh yes that would have even been better as nchar is expensive. –  Tyler Rinker Nov 26 '12 at 3:11
    
@Dason nchar() here seems to take only ~1 microsecond, of the times stated above. –  Matthew Lundberg Nov 26 '12 at 3:27

2 Answers 2

up vote 3 down vote accepted

grepl along with looking for characters that don't meet what you want seems to work

grepl("[^a-zA-Z[:space:]]", x)

This gives the same output as your original code

> x <- c("ff d fdf4f", "fve dvgf", "vfev!", "rcvce rc&")
> nchar(gsub("[a-zA-Z]|\\s+", "", x)) > 0
[1]  TRUE FALSE  TRUE  TRUE
> grepl("[^a-zA-Z[:space:]]", x)
[1]  TRUE FALSE  TRUE  TRUE
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This is just over twice as fast as the original code. –  Matthew Lundberg Nov 26 '12 at 2:44
1  
@MatthewLundberg Makes sense, since at some level nchar(gsub()) ought to take 2 passes, and grepl should only take one, I guess. –  joran Nov 26 '12 at 2:46
3  
@joran I would expect that, being interpreted, R will not be able to actually prevent the creation of new objects of mode character in the gsub() solution. If my expectations are correct, I would also expect that this has a big impact on the runtime. –  Matthew Lundberg Nov 26 '12 at 2:48
    
Thank you Dason. I was thinking the grep solution but my mind didn't go grepl when it should have as I wanted a logical return. +1 –  Tyler Rinker Nov 26 '12 at 3:09

Use grep instead:

grep("[^a-zA-Z\\s]+", x, value=FALSE)
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No need for the + in the regex (but of course it will not hurt). –  Matthew Lundberg Nov 26 '12 at 2:51
    
@MatthewLundberg - You are right. I have no idea why I put + there :) –  Ωmega Nov 26 '12 at 2:54
    
@Ωmega - I actually did the same originally. It was mainly because I was just modifying Tyler's code and he has the + in there... (Also it took me a while to get your name properly for the @Ωmega) –  Dason Nov 26 '12 at 2:57
    
@Dason - It seems that I was first who made that mistake, as my answer came 6 seconds before yours :) But as for sure we made our mistakes independently, it just prove that we are humans... ;) –  Ωmega Nov 26 '12 at 3:01

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