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I have a long regex containing (?:\S+ ){0,4}

That should match: (it's already doing this correctly)

2 Terry White 
Tramal 100 
Asmol 2.5 
2.5% 

or anything matching that, except a single decimal or price.

It should not match: (I don't know how to do this exception)

870
6.75
$17.60

Is that even possible?

Thanks everyone for your input. Just FYI for those who are curious, here is one of the shortest "long regex" it is used in (you can find it near the end)

^ {0,5}(\d{4}[A-Z]) +((?:\S+ )+(?: {0,10}K\+)?) *(\.\.|\d+) +(?:[A-Z#\*] *)?(\.\.|\d+(?:\.\d{1,4})?) +(?:[ab] *)?((?:\S+ ){0,4}) *([A-Z]{2}) {0,10}$
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Do you have flexibility to write your code in the opposite way? In other words write your regex to match a single decimal or price (pretty trivial). If it matches, then reject the input; otherwise accept it. –  Brian Rogers Mar 23 '13 at 2:40
    
No, as I said it is only a part of a long regex. Thanks anyway –  aximili Mar 23 '13 at 2:44
    
Was worth a shot. Sometimes you can work around a tough problem by thinking about it in a different way. –  Brian Rogers Mar 23 '13 at 2:45
2  
I'm not sure what you want to do is going to work with regex alone (based upon the updated information). The problem comes in (and this applies to my answer below) that your use of (?:\S+ ){0,4} will capture the Asmol 2.5, and then my suggestion of lookbehind will find the 2.5 and cry "foul." I think you're trying to accomplish too much with regex alone. You may be able to include some more lookarounds to accomplish this, but it's going to get pretty gnarly, and your current regex is pretty hairy as it is. –  Kenneth K. Mar 23 '13 at 2:53
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1 Answer

up vote 1 down vote accepted

I'm not sure what you mean by "a single decimal" since your first failing example appears to be an integer, but you might try:

^(?!\$?\d+(?:\.\d+)?$).+$

Based upon your comments, I'm thinking a negative lookbehind might be more of what you are looking for:

(?<!\$?\d+(?:\.\d+)?)
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+1 for negative lookahead. Also, you can use the asker's original expression in place of the .+ near the end, as the case may be. –  Wiseguy Mar 23 '13 at 2:40
    
@Wiseguy Perhaps, but the "or anything" anything comment leads me to believe a .+ would be more applicable. –  Kenneth K. Mar 23 '13 at 2:41
    
Thanks Kennetch, but it is only a part of a long regex, I can't use ^ or $ to match beginning or end of line –  aximili Mar 23 '13 at 2:41
    
Ah yes, quite right. –  Wiseguy Mar 23 '13 at 2:42
    
@aximili Well without knowing the "long regex", it's only conjecture at this point. –  Kenneth K. Mar 23 '13 at 2:43
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