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I have this regex for getting strings in Python code:

x1 = re.compile('''((?P<unicode>u?)(?P<c1>'|")(?P<data>.+?)(?P<c2>'|"))''')

I want to extract the data and c1,c2 parts of this regex to make a replace string (if c1 == c2)
Something like:

repl = "u<c1><data><c2>"

How can I do this??
Is that possible in one line or by using re.sub?

UPDATE:
My new code:

x1 = re.compile('''(?P<unicode>u?)(?P<c>'|")(?P<data>.*?)(?P=c)''')
def repl(match):
    if '#' in match.string:
        ### Confused
    return "u%(c)s%(data)s%(c)s" % m.groupdict()

fcode = '\n'.join([re.sub(x1,repl,i) for i in scode.splitlines()])

Here, I am having problems to determine how to not change strings in comments, what do I have to do to ignore the comments??

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Can this be used: docs.python.org/2/library/re.html#text-munging ? –  Morten Jensen Mar 17 '13 at 3:47
    
@MortenJensen Yes.. But please elaborate on it if you plan to answer using that... –  Schoolboy Mar 17 '13 at 3:51
    
I'm guessing what you want is to make code works under 3.3 and 2.x. Maybe 2to3 is a good choice. If you are not against using it, I will update my solution. –  Kabie Mar 17 '13 at 5:09
    
@Kabie You haven't updated for some time now, guess you were waiting for my OK... –  Schoolboy Mar 17 '13 at 11:02
    
I was waiting for you update your real question. –  Kabie Mar 17 '13 at 15:05

2 Answers 2

Say you have a pattern:

pattern = r'''(?P<unicode>u?)(?P<c>'|")(?P<data>.*?)(?P=c)''' # did a little tweak

Match a string:

m = re.search(pattern, "print('hello')")

What you got:

>>> m.groups()
('', '"', 'hello')
>>> m.groupdict()
{'c': '"', 'unicode': '', 'data': 'hello'}

Now you can do whatever you want with these:

>>> 'u{c}{data}{c}'.format_map(m.groupdict())
'u"hello"'

Maybe you are using Python 2.x:

>>> 'u{c}{data}{c}'.format(**m.groupdict())
'u"hello"'

Or even you like old %

>>> "u%(c)s%(data)s%(c)s" % m.groupdict()
'u"hello"'

Edited:

The regex solution can't handle some situations correctly.

So I used a 2to3 hack(it's actually 3to2, and still can't solve everything):

cd /usr/lib/python3.3/lib2to3/fixes/
cp fix_unicode.py fix_unicode33.py

Edit fix_unicode33.py

-_literal_re = re.compile(r"[uU][rR]?[\'\"]")
+_literal_re = re.compile(r"[rR]?[\'\"]")

-class FixUnicode(fixer_base.BaseFix):
+class FixUnicode33(fixer_base.BaseFix):

-                new.value = new.value[1:]
+                new.value = 'u' + new.value

Now 2to3 --list | grep unicode33 should output unicode33

Then you can run 2to3 -f unicode33 py3files.py.

Remember to remove fix_unicode33.py after

NOTE: In Python3 ur"string" throws SyntaxError. The logic here is simple, modify it to reach your goal.

share|improve this answer
    
Thanks but I was just about to post an edit, on how to change my function (which I will post) to not edit comments... –  Schoolboy Mar 17 '13 at 4:24
    
I don't understand what your edit means.. What's with 2to3/3to2 ?? –  Schoolboy Mar 18 '13 at 4:47
    
@Schoolboy: that's to answer another question which you didn't ask but I assumed - add u prefix to strings in a python source file. –  Kabie Mar 18 '13 at 6:13

The long code I ended up with.

x1 = re.compile('''(?P<unicode>u?)(?P<c>'|")(?P<data>.*?)(?P=c)''')

def in_string(text,index):
    curr,in_l,in_str,level = '',0,False,[]

    for c in text[:index+1]:
        if c == '"' or c == "'":
            if in_str and curr == c:
                instr = False
                curr = ''
                in_l -= 1
            else:
                instr = True
                curr = c
                in_l += 1
        level.append(in_l)
    return bool(level[index])

def repl(m):
    return "u%(c)s%(data)s%(c)s" % m.groupdict()

def handle_hashes(i):
    if i.count('#') == 1:
        n = i.find('#')
    else:
        n = get_hash_out_of_string(i)
    return re.sub(x1,repl,i[:n]) + i[n:]

def get_hash_out_of_string(i):
    n = i.find('#')
    curr = i[:]
    last = (len(i)-1)-''.join(list(reversed(i))).find('#')
    while in_string(curr,n) and n < last:
        curr = curr[:n]+' '+curr[n+1:]
        n = curr.find('#')
    return n
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