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I'm trying to extract hashes out of a file, and want to add a boundary clause (\b) around the regex without changing the regex directly.

So for example, lets take this regex: ^\$1\$\w+\$\w+(.)?\w+..$ and I already have it compiled: re.compile(r"^\$1\$\w+\$\w+(.)?\w+..$"). Now I want to keep the regex as is and add boundaries around it without directly changing the regex itself. So something like:

def add_bound(regex_string):
    return r"\b{}\b".format(regex_string)

The only problem that I'm having with this is that my regex's are pre-compiled before the execution of them, so it turns them into something like <_sre.SRE_Pattern object at 0x7f846a189770>. Is there a way I add boundaries around an already compiled regular expression?

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    Why do you need to wrap the ^\$1\$\w+\$\w+(.)?\w+..$ with word boundaries? It won't work then, because \b^\$ will require a word char before $. We only want to put word boundaries when we are sure the input is a literal word, having word chars at the start and end. – Wiktor Stribiżew Aug 21 '17 at 19:14
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    if you compile them to a variable, you can use variablename.pattern to get to the pattern. If that is really what you want to do. E.g. regex = re.compile("[A-Z]") regex.pattern '[A-Z]' – patrick Aug 21 '17 at 19:14
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Yes, what you can do is de-compile it, add the boundaries, then recompile it.

import regex as re

def add_bound(regex_obj):
    new_regex_string = r'\b' + regex_obj.pattern + r'\b'
    new_regex_obj = re.compile(new_regex_string)
    return new_regex_obj


# example usage
some_text = """
ahello worlda
hello world
"""
regex_obj = re.compile(r"hello world")

print re.findall(add_bound(regex_obj),some_text)

The function above is for explanation/illustration, the one that should be used in code would be:

import regex as re
def add_bound(regex_obj):
    return re.compile(r'\b' + regex_obj.pattern + r'\b')

I used How to decompile a regex? to develop this answer

I'm not sure why your example regex (^\$1\$\w+\$\w+(.)?\w+..$) starts and ends with anchors though (^ and $) since those would basically override adding boundaries (\b).

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