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I am trying to figure out a regular expression which matches any string with 8 symbols, which doesn't equal "00000000".

can any one help me?

thanks

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2  
Will your next question be on matching except "0000000000000000"... –  KennyTM Apr 22 '10 at 12:07
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8 Answers

In at least perl regexp using a negative lookahead assertion: ^(?!0{8}).{8}$, but personally i'd rather write it like so:

length $_ == 8 and $_ ne '00000000'

Also note that if you do use the regexp, depending on the language you might need a flag to make the dot match newlines as well, if you want that. In perl, that's the /s flag, for "single-line mode".

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Christoffer - use @Marcelo and @klausbyskov to notify both about your changes ... this way they will get a real notification in their status bar and hopefully return to your answer again :) See meta.stackoverflow.com/questions/4798/… –  tanascius Apr 22 '10 at 11:55
    
Ah, thanks @tanascius, @Marcelo, and @klausbyskov. :) –  Christoffer Hammarström Apr 22 '10 at 11:57
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Unless you are being forced into it for some reason, this is not a regex problem. Just use len(s) == 8 && s != "00000000" or whatever your language uses to compare strings and lengths.

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and of course the size check. –  Nix Apr 22 '10 at 11:54
    
I am using Enterprise Library Validation, where I need to add regular expression, thats I want to know how can I figure out regex. –  Wilson Apr 22 '10 at 11:55
1  
Surely you meant (s.length() == 8) && (s != "00000000")? –  ndim Apr 22 '10 at 11:55
1  
True, and if this is a homework assignment - it needs to be specified. +1 –  M.A. Hanin Apr 22 '10 at 11:55
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As mentioned in the other answers, regular expressions are not the right tool for this task. I suspect it is a homework, thus I'll only hint a solution, instead of stating it explicitly.

The regexp "any 8 symbols except 00000000" may be broken down as a sum of eight regexps in the form "8 symbols with non-zero symbol on the i-th position". Try to write down such an expression and then combine them into one using alternative ("|").

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+1 for picking up the smell of homework. ;) –  Pretzel Apr 22 '10 at 14:35
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If you need a regex, ^(?!0{8})[A-Za-z0-9]{8}$ will match a string of exactly 8 characters. Changing the values inside the [] will allow you to set the accepted characters.

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Unless you have unspecified requirements, you really don't need a regular expression for this:

if len(myString) == 8 and myString != "00000000":
    ...

(in the language of your choice, of course!)

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@Ritchie, what if the string has to be extracted from a larger string... –  James Apr 22 '10 at 11:57
    
@James: The question says "any string with 8 symbols". But the question seriously underspecifies the problem, so who knows? –  RichieHindle Apr 22 '10 at 12:00
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If you need to extract all eight character strings not equal to "000000000" from a larger string, you could use

"(?=.{8})(?!0{8})."

to identify the first character of each sequence and extract eight characters starting with its index.

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That would only extract one character. Try (?!0{8}).{8}. –  Christoffer Hammarström Apr 22 '10 at 12:28
    
@Christoffer: That was my intention. I thought maybe the OP wanted to get every eight characters matching his requirements from a larger string. Like 12345678 and 23456789 from 123456789. I do not think this can be achieved with Regex only, but identifying the first character helps. –  Jens Apr 22 '10 at 13:03
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Of course, one would simply check

if stuff != '00000000'
   ...

but for the record, one could easily employ heavyweight regex (in Perl) for that ;-)

...
use re 'eval';

my @strings = qw'00000000 00A00000 10000000 000000001 010000';
my $L = 8;

print map "$_ - ok\n",
      grep /^(.{$L})$(??{$^Nne'0'x$L?'':'^$'})/,
      @strings;

...

prints

00A00000 - ok
10000000 - ok

go figure ;-)

Regards

rbo

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Wouldn't ([1-9]*|\D){8} do it? Or am I missing something here (which is actually just the inverse of ndim's, which seems like it oughta work).

I am assuming the characters was chosen to include more than digits.

Ok so that was wrong, so Professor Bolo did I get a passing grade? (I love reg expressions so I am really curious).

>>> if re.match(r"(?:[^0]{8}?|[^0]{7}?|[^0]{6}?|[^0]{5}?|[^0]{4}?|[^0]{3}?|[^0]2}?|[^0]{1}?)", '00000000'):
    print 'match'
... 
>>> if re.match(r"(?:[^0]{8}?|[^0]{7}?|[^0]{6}?|[^0]{5}?|[^0]{4}?|[^0]{3}?|[^0]{2}?|[^0]{1}?)", '10000000'):
...     print 'match'
match
>>> if re.match(r"(?:[^0]{8}?|[^0]{7}?|[^0]{6}?|[^0]{5}?|[^0]{4}?|[^0]{3}?|[^0]{2}?|[^0]{1}?)", '10011100'):
...     print 'match'
match
>>> 

That work?

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1  
how about 10000000? –  rmarimon Apr 22 '10 at 12:12
    
Right, isn't it to match any string that is not 00000000? Which 100000000 is not and is picked up by my regex. Or correct me. –  zenWeasel Apr 22 '10 at 12:17
    
First of all, your regexp doesn't match e.g. 11101111. Second of all, due to the asterisk the regexp matches strings of any length. –  Bolo Apr 22 '10 at 12:18
    
@zenWeasel It's still wrong, since it matches 123 and 123456789. Only 8-character long strings should be matched (excluding 00000000). –  Bolo Apr 22 '10 at 14:38
    
Ah well. Thanks for checking my work anyway. Good exercise. I'll get it yet. :) –  zenWeasel Apr 22 '10 at 15:43
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