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I'd like to use regex to see if a string does not begin with a certain pattern. While I can use: [^ to blacklist certain characters, I can't figure out how to blacklist a pattern.

> grepl("^[^abc].+$", "foo")
[1] TRUE
> grepl("^[^abc].+$", "afoo")
[1] FALSE

I'd like to do something like grepl("^[^(abc)].+$", "afoo") and get TRUE, i.e. to match if the string does not start with abc sequence.

Note that I'm aware of this post, and I also tried using perl = TRUE, but with no success:

> grepl("^((?!hede).)*$", "hede", perl = TRUE)
[1] FALSE
> grepl("^((?!hede).)*$", "foohede", perl = TRUE)
[1] FALSE

Any ideas?

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1  
Could you match strings that do begin with the pattern, then negate the logical result from grepl? –  Joshua Ulrich Dec 8 '11 at 21:53
    
Sure, but I'd like to put some more stuff in there! =) –  aL3xa Dec 8 '11 at 21:57
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1 Answer

up vote 7 down vote accepted

Yeah. Put the zero width lookahead /outside/ the other parens. That should give you this:

> grepl("^(?!hede).*$", "hede", perl = TRUE)
[1] FALSE
> grepl("^(?!hede).*$", "foohede", perl = TRUE)
[1] TRUE

which I think is what you want.

Alternately if you want to capture the entire string, ^(?!hede)(.*)$ and ^((?!hede).*)$ are both equivalent and acceptable.

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Wow, that was both quick and neat. Thanks! I'll have to wait for 7 mins to give a checkmark. =) –  aL3xa Dec 8 '11 at 21:57
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