First and foremost,
replacement patterns ≠ regular expression patterns
We use a regex pattern to search for matches, we use replacement patterns to replace matches found with regex.
NOTE: The only special character in a substitution pattern is a backslash,
. Only the backslash must be doubled.
Replacement pattern syntax in Python
The re.sub
docs are confusing as they mention both string escape sequences that can be used in replacement patterns (like
,
) and regex escape sequences (6
) and those that can be used as both regex and string escape sequences (&
).
I am using the term regex escape sequence to denote an escape sequence consisting of a literal backslash + a character, that is, '\X'
or r'X'
, and a string escape sequence to denote a sequence of
and a char or some sequence that together form a valid string escape sequence. They are only recognized in regular string literals. In raw string literals, you can only escape "
(and that is the reason why you can't end a raw string literal with "
, but the backlash is still part of the string then).
So, in a replacement pattern, you may use backreferences:
re.sub(r'D(d)D', r'1', 'a1b') # => 1
re.sub(r'D(d)D', '\1', 'a1b') # => 1
re.sub(r'D(d)D', 'g<1>', 'a1b') # => 1
re.sub(r'D(d)D', r'g<1>', 'a1b') # => 1
You may see that r'1'
and '\1'
is the same replacement pattern, 1
. If you use '1'
, it will get parse as a string escape sequence, a character with octal value 001
. If you forget to use r
prefix with the unambiguous backreference, there is no problem because g
is not a valid string escape sequence, and there,
escape character remains in the string. Read on the docs I linked to:
Unlike Standard C, all unrecognized escape sequences are left in the string unchanged, i.e., the backslash is left in the result.
So, when you pass '.'
as a replacement string, you actually send .
two-char combination as the replacement string, and that is why you get .
in the result.
is a special character in Python replacement pattern
If you use re.sub(r's+.', r'\.', text)
, you will get the same result as in text2
and text3
cases, see this demo.
That happens because \
, two literal backslashes, denote a single backslash in the replacement pattern. If you have no Group 2 in your regex pattern, but pass r'2'
in the replacement to actually replace with
and 2
char combination, you would get an error.
Thus, when you have dynamic, user-defined replacement patterns you need to double all backslashes in the replacement patterns that are meant to be passed as literal strings:
re.sub(some_regex, some_replacement.replace('\', '\\'), input_string)