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I'm trying to write a regex to replace strings if not surrounded by single quotes. For example I want to replace FOO with XXX in the following string:

string = "' FOO ' abc 123 ' def FOO ghi 345 ' FOO '' FOO ' lmno 678 FOO '"

the desired output is:

output = "' FOO ' abc 123 ' def FOO ghi 345 ' XXX '' XXX ' lmno 678 FOO '"

My current regex is:

myregex = re.compile("(?<!')+( FOO )(?!')+", re.IGNORECASE)

I think I have to use look-around operators, but I don't understand how... regex are too complicated to me :D

Can you help me?

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I think your example is broken. Why isn't the first " abc 123 " not replaced with XXX? –  Andrew Alcock Aug 3 '12 at 8:45
    
The example looks right to me, the first FOO is surrounded by single quotes and must be skipped –  daveoncode Aug 3 '12 at 8:47
    
Agree with you on the first FOO. However, doesn't that mean that the bit starting abc is /outside/? If so, the result should be: "' FOO ' XXX ' def FOO ghi 345 ' XXX '' XXX ' lmno 678 FOO '". Correct? –  Andrew Alcock Aug 3 '12 at 8:52
    
The example seems broken to me as well. –  DhruvPathak Aug 3 '12 at 8:55
    
no, only the literal "FOO" (with one space before and one after) should be replaced with "XXX" :P –  daveoncode Aug 3 '12 at 8:57

2 Answers 2

up vote 2 down vote accepted

Here's how it could be done:

import re

def replace_FOO(m):
    if m.group(1) is None:
        return m.group()

    return m.group().replace("FOO", "XXX")

string = "' FOO ' abc 123 ' def FOO ghi 345 ' FOO '' FOO ' lmno 678 FOO '"

output = re.sub(r"'[^']*'|([^']*)", replace_FOO, string)

print(string)
print(output)

[EDIT]

The re.sub function will accept as a replacement either a string template or a function. If the replacement is a function, every time it finds a match it'll call the function, passing the match object, and then use the returned value (which must be a string) as the replacement string.

As for the pattern itself, as it searches, if there's a ' at the current position it'll match up to and including the next ', otherwise it'll match up to but excluding the next ' or the end of the string.

The replacement function will be called on each match and return the appropriate result.

Actually, now I think about it, I don't need to use a group at all. I could do this instead:

def replace_FOO(m):
    if m.group().startswith("'"):
        return m.group().replace("FOO", "XXX")

    return m.group()

string = "' FOO ' abc 123 ' def FOO ghi 345 ' FOO '' FOO ' lmno 678 FOO '"

output = re.sub(r"'[^']*'|[^']+", replace_FOO, string)
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Does not work for me, I get ' FOO '' def FOO ghi 345 '''' lmno 678 FOO ' as the output (the "XXX" are gone) –  Adam Parkin Aug 3 '12 at 18:20
    
It works as expected for me (Python 2.7.1) thanks a lot! It would be very useful if you could explain the code, since I'm a Python and regex newbie :P –  daveoncode Aug 11 '12 at 21:02
1  
@daveoncode: I've edited my answer. –  MRAB Aug 11 '12 at 22:12

This is hard to do without variable length lookbehind. I'm not sure if python regex support it. Anyway, a simple solution is the following:

Use this regex: (?:[^'\s]\s*)(FOO)(?:\s*[^'\s])

The first capture group should return the right result.

In case this is always a quote with a single space after it, as in your example, you can use fixed length lookbehind: (?<=[^'\s]\ )FOO(?=\s*[^'\s]) which will match exactly the one you want.

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1  
Python's standard regex library 're' doesn't support variable-length lookbehinds, but there is an alternative regex library on PyPI which does at pypi.python.org/pypi/regex. –  MRAB Aug 3 '12 at 18:20

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