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 am making a class that relies heavily on regular expressions.

Let's say my class looks like this:

class Example:
    def __init__(self, regex):
        self.regex = regex

    def __repr__(self):
        return 'Example({})'.format(repr(self.regex.pattern))

And let's say I use it like this:

import re

example = Example(re.compile(r'\d+'))

If I do repr(example), I get 'Example('\\\\d+')', but I want 'Example(r'\\d+')'. Take into account the extra backslash where that upon printing, it appears correctly. I suppose I could implement it to return "r'{}'".format(regex.pattern), but that doesn't sit well with me. In the unlikely event that the Python Software Foundation someday changes the manner for specifying raw string literals, my code won't reflect that. That's hypothetical, though. My main concern is whether or not this always works. I can't think of an edge case off the top of my head, though. Is there a more formal way of doing this?

EDIT: Nothing seems to appear in the Format Specification Mini-Language, the printf-style String Formatting guide, or the string module.

share|improve this question
add comment

2 Answers

up vote 4 down vote accepted

The problem with rawstring representation is, that you cannot represent everything in a portable (i.e. without using control characters) manner. For example, if you had a linebreak in your string, you had to literally break the string to the next line, because it cannot be represented as rawstring.

That said, the actual way to get rawstring representation is what you already gave:

"r'{}'".format(regex.pattern)

The definition of rawstrings is that there are no rules applied except that they end at the quotation character they start with and that you can escape said quotation character using a backslash. Thus, for example, you cannot store the equivalent of a string like "\" in raw string representation (r"\" yields SyntaxError and r"\\" yields "\\\\").

If you really want to do this, you should use a wrapper like:

def rawstr(s):
    """
    Return the raw string representation (using r'') literals of the string
    *s* if it is available. If any invalid characters are encountered (or a
    string which cannot be represented as a rawstr), the default repr() result
    is returned.
    """
    if any(0 <= ord(ch) < 32 for ch in s):
        return repr(s)

    if (len(s) - len(s.rstrip("\\"))) % 2 == 1:
        return repr(s)

    pattern = "r'{0}'"
    if '"' in s:
        if "'" in s:
            return repr(s)
    elif "'" in s:
        pattern = 'r"{0}"'

    return pattern.format(s)

Tests:

>>> test1 = "\\"
>>> test2 = "foobar \n"
>>> test3 = r"a \valid rawstring"
>>> test4 = "foo \\\\\\"
>>> test5 = r"foo \\"
>>> test6 = r"'"
>>> test7 = r'"'
>>> print(rawstr(test1))
'\\'
>>> print(rawstr(test2))
'foobar \n'
>>> print(rawstr(test3))
r'a \valid rawstring'
>>> print(rawstr(test4))
'foo \\\\\\'
>>> print(rawstr(test5))
r'foo \\'
>>> print(rawstr(test6))
r"'"
>>> print(rawstr(test7))
r'"'
share|improve this answer
1  
+1 Though the implementation is flawed (assumes ASCII, does not catch all instances of an odd number of backslashes at the end of the string) and the rest is ugly (how about if any(<condition involving c> for c in s)?). –  delnan Dec 8 '12 at 15:11
    
good point, didn't think about the general problem of an odd number of backslashes, I'll try to extend that. –  Jonas Wielicki Dec 8 '12 at 15:11
    
Just got done playing around with your code. This is impressive! I didn't even think about the control characters. I see that your function falls back to the normal string representation in the event of a control character. By the way, filter returns an iterator, so there's no need to call iter. :) Thank you. –  Tyler Crompton Dec 8 '12 at 15:33
    
@TylerCrompton Thanks for thanking! filter: That's dependent on the python version. In Python2, it'll be a list. –  Jonas Wielicki Dec 8 '12 at 15:58
    
@delnan Oh, didn't even think about any. Thanks for the suggestion. Cannot fix the other condition without using itertools though. With itertools, i'd do a sum(map(lambda x: 1, takewhile(lambda x: x == "\\", reversed(s)))) off the top of my head. –  Jonas Wielicki Dec 8 '12 at 16:02
show 6 more comments

Isn't a raw string just a regular string? If you want to see the raw content of a string you could just print it, enclosing it between r' and ' if you need:

>>> a = r'test\123'
>>> print("r'{}'".format(a))
r'test\123'
share|improve this answer
2  
-1 This answer adds nothing that isn't already in the question. –  delnan Dec 8 '12 at 15:08
    
This is funny. The concept in my answer is the key of the accepted one. –  etuardu Dec 10 '12 at 17:32
1  
No, the accepted answer explains that (and why) OP's definition is more-or-less correct, points out a potential pitfall, explains the rules concerning raw strings, and gives a function to sidestep the aforementioned pitfall. Your answer makes a wrong statement, and does nothing else (except also doing what OP already mentioned). –  delnan Dec 10 '12 at 17:42
add 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.