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I use the following regex, but it doesn't work

([^@]+)(?:_@(\d+))?

Variable_Name_1
Actual:
\1 = Variable_Name_1
\2 = null

Expected:

\1 = Variable_Name_1
\2 = null

Variable_Name_1_@4
Actual:

\1 = Variable_Name_1_
\2 = null

Expected:

\1 = Variable_Name_1
\2 = 4

Do you have some ideas to solve my problem ?

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1  
What tool or programming language/library do you feed the regex to? –  Irfy Mar 4 '12 at 19:40
1  
Also, can yo describe in words, what you are trying to match? Are you simply trying to make the part starting with _@ optional? Or the strig _@ itself optional? –  Irfy Mar 4 '12 at 19:42
    
I use Python, I have a string in input, and i want to match the variable name and her index.i'm trying to make _@ optional, and i need to save the digit after the @ (if he exists) –  Jeff Mar 4 '12 at 19:48
    
Where's the "got"? –  Ignacio Vazquez-Abrams Mar 4 '12 at 19:55

2 Answers 2

up vote 3 down vote accepted

If that's the only requirement, regular expressions are overkill. How about this instead:

>>> "variable_name_1".partition("_@")
('variable_name_1', '', '')
>>> "variable_name_2_@5".partition("_@")
('variable_name_2', '_@', '5')
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You have right, i don't need regex to solve my problem. Thanks !! –  Jeff Mar 4 '12 at 20:10

Your regex matches the first kind of string properly, but does not match the second kind properly.

Removing the last ? in your regex matches the second kind of string properly, but no longer matches the first one properly.

I believe the reason is that making the second part of the regex optional, makes the first part too greedy. I do not know if there is a modifier that will make your regex work, but a combination of the two regexes will work:

>>> re.search('(?:([^@]+)(?:_@(\d+))|([^@]+))', 'Variable_Name_1_@4').groups()
('Variable_Name_1', '4', None)
>>> re.search('(?:([^@]+)(?:_@(\d+))|([^@]+))', 'Variable_Name_1').groups()
(None, None, 'Variable_Name_1')

What you need now is just post-process the tuple to have two elements where second is maybe None.

Alternatively, you could manually try matching against the first regex, and then against the second regex in a utility function.

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Exactly ! i need to use another group. I think the best way is to use the partition function in Python –  Jeff Mar 4 '12 at 20:14

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