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How can I replace 'foobar' to 'foo123bar'?

This doesn't work:

>>> re.sub(r'(foo)', r'\1123', 'foobar')

This works:

>>> re.sub(r'(foo)', r'\1hi', 'foobar')

I think it's a common issue: number after \number. Anyone can give me a point on how to handle this?

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This question has been added to the Stack Overflow Regular Expression FAQ, under "Groups". – aliteralmind Apr 10 '14 at 0:24

1 Answer 1

The answer is:

re.sub(r'(foo)', r'\g<1>123', 'foobar')

Relevant excerpt from the docs:

In addition to character escapes and backreferences as described above, \g will use the substring matched by the group named name, as defined by the (?P...) syntax. \g uses the corresponding group number; \g<2> is therefore equivalent to \2, but isn’t ambiguous in a replacement such as \g<2>0. \20 would be interpreted as a reference to group 20, not a reference to group 2 followed by the literal character '0'. The backreference \g<0> substitutes in the entire substring matched by the RE.

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This is exactly what I want. I should read the doc more carefully. Thanks. – zhigang May 12 '11 at 21:39
Don't be so hard on yourself. It's buried in the documentation so far deep that it would take most people far more time to read the docs than to google their question and have this answer come up on SO. – speedplane Sep 1 at 5:55
For that matter, thanks for that, I tried to find it in the docs, but didn't, so I came to this answer. – Dakkaron Sep 21 at 11:49

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