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.

I'd like to match three-character sequences of letters (only letters 'a', 'b', 'c' are allowed) separated by comma (last group is not ended with comma).

Examples:

abc,bca,cbb
ccc,abc,aab,baa
bcb

I have written following regular expression:

re.match('([abc][abc][abc],)+', "abc,defx,df")

However it doesn't work correctly, because for above example:

>>> print bool(re.match('([abc][abc][abc],)+', "abc,defx,df")) # defx in second group
True
>>> print bool(re.match('([abc][abc][abc],)+', "axc,defx,df")) # 'x' in first group
False

It seems only to check first group of three letters but it ignores the rest. How to write this regular expression correctly?

share|improve this question

7 Answers 7

up vote 6 down vote accepted

Try following regex:

^[abc]{3}(,[abc]{3})*$

^...$ from the start till the end of the string
[...] one of the given character
...{3} three time of the phrase before
(...)* 0 till n times of the characters in the brackets

share|improve this answer

What you're asking it to find with your regex is "at least one triple of letters a, b, c" - that's what "+" gives you. Whatever follows after that doesn't really matter to the regex. You might want to include "$", which means "end of the line", to be sure that the line must all consist of allowed triples. However in the current form your regex would also demand that the last triple ends in a comma, so you should explicitly code that it's not so. Try this:

re.match('([abc][abc][abc],)*([abc][abc][abc])$'

This finds any number of allowed triples followed by a comma (maybe zero), then a triple without a comma, then the end of the line.

Edit: including the "^" (start of string) symbol is not necessary, because the match method already checks for a match only at the beginning of the string.

share|improve this answer
    
You explained well that the regex will need anchors at the start and the end, but you didn't include the ^ in your solution. –  stema Dec 15 '11 at 8:01
    
Oops! Thank you, I'll edit it. –  Sonya Dec 15 '11 at 8:07
    
There's no need of ^ at the beginning of the pattern because it is the method match() that is used. I correct , and I upvote. Welcome on SO , Sonya –  eyquem Dec 15 '11 at 8:22
    
@eyquem, sorry you are right (+1 to Sonya) –  stema Dec 15 '11 at 8:28
    
@eyquem, thank you! Writing the very first answer was pretty scary :) –  Sonya Dec 15 '11 at 8:30

You need to iterate over sequence of found values.

data_string = "abc,bca,df"

imatch = re.finditer(r'(?P<value>[abc]{3})(,|$)', data_string)

for match in imatch:
    print match.group('value')

So the regex to check if the string matches pattern will be

data_string = "abc,bca,df"

match = re.match(r'^([abc]{3}(,|$))+', data_string)

if match:
    print "data string is correct"
share|improve this answer
1  
+1 for the (,|$) –  CKuck Dec 15 '11 at 8:00

Your result is not surprising since the regular expression

([abc][abc][abc],)+

tries to match a string containing three characters of [abc] followed by a comma one ore more times anywhere in the string. So the most important part is to make sure that there is nothing more in the string - as scessor suggests with adding ^ (start of string) and $ (end of string) to the regular expression.

share|improve this answer

An alternative without using regex (albeit a brute force way):

>>> def matcher(x):
        total = ["".join(p) for p in itertools.product(('a','b','c'),repeat=3)]
            for i in x.split(','):
                if i not in total:
                    return False
         return True

>>> matcher("abc,bca,aaa")
    True
>>> matcher("abc,bca,xyz")
    False
>>> matcher("abc,aaa,bb")
    False
share|improve this answer

If your aim is to validate a string as being composed of triplet of letters a,b,and c:

for ss in ("abc,bbc,abb,baa,bbb",
           "acc",
           "abc,bbc,abb,bXa,bbb",
           "abc,bbc,ab,baa,bbb"):
    print ss,'   ',bool(re.match('([abc]{3},?)+\Z',ss))

result

abc,bbc,abb,baa,bbb     True
acc     True
abc,bbc,abb,bXa,bbb     False
abc,bbc,ab,baa,bbb     False

\Z means: the end of the string. Its presence obliges the match to be until the very end of the string

By the way, I like the form of Sonya too, in a way it is clearer:

bool(re.match('([abc]{3},)*[abc]{3}\Z',ss))
share|improve this answer

The obligatory "you don't need a regex" solution:

all(letter in 'abc,' for letter in data) and all(len(item) == 3 for item in data.split(','))
share|improve this answer

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.