6

The regex I'm searching has the following constraints:

  • it starts with "//"
  • then "[" a non number sequence (called delimiter in this list) and "]"
  • next line "\n"
  • "[" 0 or more number separated by the delimiter previously found "]".

For example the following text matches the regex:

//[*#*]
[1*#*34*#*64]

and the following text doesn't match the regex:

//[*#*]
[1#34#64]

because the delimiter is not the same matched in the first row

The regex I currently create is

^//\[(\D)+\]\n\[[(\d)+(\D)+]*(\d)+\]$|^//\[(\D)+\]\n\[\]$|^//\[(\D)+\]\n\[(\d)+\]$

but obviously this regex match with both previous examples.

Is there a way to "recall" a char sequence already matched in the regex itself?

2
  • 3
    Look up back-references. For a quick example \(.*\)\1 matches any string of the form <s><s>. Meaning, a string made of concatenating a string to itself.
    – Guido
    Dec 23, 2013 at 1:29
  • 2
    What is the language you are using?
    – justhalf
    Dec 23, 2013 at 1:45

2 Answers 2

4

You need something called back-reference (a very good tutorial here).

Use this regex in Python:

r'^//\[([^\]]+)\]\n\[\d+(\1\d+)*\]'

Sample run:

>>> string = """//[*#*]
... [1*#*34*#*64]"""
>>> print re.search(r'^//\[([^\]]+)\]\n\[\d+(\1\d+)*\]',string).group(0)
//[*#*]
[1*#*34*#*64]

will match your string in Python.

Regular expression visualization

Debuggex Demo

4

You need to use a back-reference, in most languages you can reference a matching group using \n where n is the group number.

This pattern will work:

//\[([^]]++)]\n\[(?>\d++\1?)+]

To break it down:

  • // just matches the literal
  • \[([^]]++)] matches some characters in square brackets
  • \n matches the newline
  • \[(?:\d++\1?)++] matches one or more digits followed by the match captured in the first pattern section - optionally. This is an atomic group.

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