Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Sorry if this is redundant.

I need to match an expression in python with regular expressions that only matches even number of letter occurances. For example:

# Even number of A's
AAA # no match
AA # match
fsfaAAasdf #match
sAfA  # match
sdAAewAsA # match
AeAiA  # no match

EDIT: Sorry for confusion. You are right - even number of A's SHOULD match. Like I said - was tired. Thank you

EDIT2: If you down-vote my question - please comment on what the problem is. I want to make it as clear and as useful as possible to people. Thank you.

share|improve this question
1  
Do you want to match a specific number of a certain letter? Or any letter, but for each letter you find in a string, it must be there an even number of times? –  Ross Rogers Jan 11 '10 at 21:50
    
Also, I'm not quite sure I see the pattern in your examples. Is it the start and end of the word? –  Ross Rogers Jan 11 '10 at 21:51
1  
Why is "sAfA" not a match? There are 2 A's and 2 is an even number. –  Paul McGuire Jan 11 '10 at 21:54
    
Do you want to be sure that there is at least one pair of AAs? In other words should foo match or fail to match? –  Mark Byers Jan 11 '10 at 21:59
1  
Your question is impossibly vague. Look at """sdAAewAAs # match""" ... do you mean ONE match ("AAewAA") or TWO matches (each "AA")? You want even numbers of letters, but you try to use "A*" which (obviously?) matches "", "A", "AA", "AAA", etc -- HUH? Note that 0 is an even number. –  John Machin Jan 12 '10 at 0:30
show 2 more comments

8 Answers

up vote 10 down vote accepted

Try this regular expression:

^[^A]*((AA)+[^A]*)*$

And if the As don’t need to be consecutive:

^[^A]*(A[^A]*A[^A]*)*$
share|improve this answer
2  
+1 Looks correct - find any number of non-A characters, followed by pairs of AA with other chars in between. However, it would be slightly more efficient if the (AA)* was (AA)+ ^[^A]*((AA)+[^A]*)*$ . If the original poster wants "ab" to not match the regexp will need a + on the end too, i.e ^[^A]*((AA)+[^A]*)+$ to force at least one pair. –  Tom Leys Jan 11 '10 at 21:55
    
Second version seems to work for me! –  drozzy Jan 12 '10 at 14:02
    
Can the second version be rewritten as ^([^A]*A[^A]*A[^A]*)*$ ? –  Chachi-inactive Mar 2 at 2:47
    
@Chachi-inactive Yes, it can. But I wanted to avoid unnecessary backtracking. –  Gumbo Mar 2 at 8:50
add comment

'A*' means match any number of A's. Even 0.

Here's how to match a string with an even number of a's, upper or lower:

re.compile(r'''
    ^
    [^a]*
    (
        (
            a[^a]*
        ){2}
    # if there must be at least 2 (not just 0), change the
    # '*' on the following line to '+'
    )* 
    $
    ''',re.IGNORECASE|re.VERBOSE)

You probably are using a as an example. If you want to match a specific character other than a, replace a with %s and then insert

[...]
$
'''%( other_char, other_char, other_char )
[...]
share|improve this answer
1  
0 is an even number, too. But I suspect something like "(AA)+" is more like what the OP is looking for. –  Paul McGuire Jan 11 '10 at 21:52
1  
Ooops, I just reread the OP's test cases, and he wants non-contiguous letters, too. Better just to iterate over the string and count. –  Paul McGuire Jan 11 '10 at 21:53
1  
Actually, reading this again, it looks like he wants to match a string with doubled As, and no single As anywhere. –  Anon. Jan 11 '10 at 21:56
    
Thanks, i corrected the question, sry for confusion. –  drozzy Jan 12 '10 at 13:13
    
matching 0 A's is, however, a tautology. –  Alex Brown Jan 12 '10 at 13:18
show 1 more comment

'*' means 0 or more occurences 'AA' should do the trick.

The question is if you want the thing to match 'AAA'. In that case you would have to do something like:

r = re.compile('(^|[^A])(AA)+(?!A)',)
r.search(p)

That would work for match even (and only even) number of'A'.

Now if you want to match 'if there is any even number of subsequent letters', this would do the trick:

re.compile(r'(.)\1')

However, this wouldn't exclude the 'odd' occurences. But it is not clear from your question if you really want that.

Update: This works for you test cases:

re.compile('^([^A]*)AA([^A]|AA)*$')
share|improve this answer
add comment

This searches for a block with an odd number of A's. If you found one, the string is bad for you:

(?<!A)A(AA)*(?!A)

If I understand correctly, the Python code should look like:

if re.search("(?<!A)A(AA)*(?!A)", "AeAAi"):
   print "fail"
share|improve this answer
add comment

First of all, note that /A*/ matches the empty string.

Secondly, there are some things that you just can't do with regular expressions. This'll be a lot easier if you just walk through the string and count up all occurences of the letter you're looking for.

share|improve this answer
    
Yes, easier and faster. But Regexps are too fun. –  Tom Leys Jan 11 '10 at 21:58
add comment

A* means match "A" zero or more times.

For an even number of "A", try: (AA)+

share|improve this answer
    
This will only match strings containing a pair but also a non-pair, i.e AlalaAA will match –  Tom Leys Jan 11 '10 at 21:57
add comment

It's impossible to count arbitrarily using regular expressions. For example, making sure that you have matching parenthesis. To count you need 'memory' which requires something at least as strong as a pushdown automaton, although in this case you can use the regular expression that @Gumbo provided.

The suggestion to use finditeris the best workaround for the general case.

share|improve this answer
1  
However the question does not require matching. It is not like he is asking to have as many As as Bs or a similar counting problem. –  Tom Leys Jan 12 '10 at 0:41
    
Yeah, I misread :(. My fault. –  Kaleb Pederson Jan 12 '10 at 17:24
add comment

Why work so hard coming up with a hard to read pattern? Just search for all occurrences of the pattern and count how many you find.

len(re.findall("A", "AbcAbcAbcA")) % 2 == 0

That should be instantly understandable by all experienced programmers, whereas a pattern like "(?

Simple is better.

share|improve this answer
    
Sry mate - need regex –  drozzy Jan 12 '10 at 13:26
    
why do you need regex? –  Bryan Oakley Jan 12 '10 at 13:41
    
cause it's faster, more reusable, more compact, cooler. Also it's my question, and i'm not asking about the BEST way of doing it, just how to do it with regex. –  drozzy Jan 12 '10 at 13:53
1  
faster? How do you know? More resuable? Debatable. More compact? Not as important as readability. Cooler? Who cares? A few years from now you will likely regret having to revisit some of your "cool" code. Now, the last part of your comment I can agree with -- you didn't ask for the best way. For a random person like me it's hard to tell, since most people ultimately want the best solution but just don't know how to ask, so people like me generally try to steer people in what we think is the right direction. Fair enough. –  Bryan Oakley Jan 12 '10 at 14:21
    
thanks for caring. –  drozzy Jan 12 '10 at 14:40
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.