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I have a hexadecimal string as follows (for example)

'0x100x200x3f0x2d0x300x330xd0xa'

and I want to extract all the stuff between the header

'0x100x200x3f0x2d'

and the tail

'0xd0xa'

In the example given above the expression I want to extract using regex is

'0x300x33'

in general, the string searched for can consist of an arbitrary number of two-digit hexadecimal numbers. I have tried the following

a = re.compile('0x100x200x3f0x2d([0x[0-9a-f]{2,2}]+)0xd0xa')

which does not match my example string! I just require 0x followed by exactly two hex digits 0-9a-f (always smallercase, inner rectangular bracket), to be in the string at least once (outer rect. bracket +). What am I missing?

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2 Answers 2

up vote 2 down vote accepted

So one should never have two [] nested?

A [ nested within a character group will make the outer character group include the [ character. The character ] will close the first character group, making the second ] a static character.

So your regular expression ([0x[0-9a-f]{2,2}]+) would be interpreted like this:

[0x[0-9a-f]{2,2}]+
^^^^^^^^^^^
character group with the characters: 0, x, [, 0-9, a-f
           ^^^^^
           two of those
                ^^
                followed by at least one ]

So it would for example match the following weird things:

00]
00]]]]]]]]]
[[]
xx]
ff]

Instead, you don’t want a character group, but a normal matching group (note that {2,2} shortenes to just {2}):

((0x[0-9a-f]{2})+)

This will of course generate a second group in the match results (because you have two catching groups). You can change that by making the inner group a non-capturing one by prefixing its content with ?:, i.e. (?:...) will group but not yield the results in the match.

((?:0x[0-9a-f]{2})+)
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perfect. and thanks for the clear explanations of the various terms. –  Alex Dec 11 '12 at 10:38
    
One question, though. Without using the term ?: the findall methods returns [('0x300x33', '0x33')]. What happened to 0x30, shouldn't that be found as well? –  Alex Dec 11 '12 at 10:44
    
In a result set, each group is only included once. That means for constructions like (x)+ the group will only contain the last result. That’s why you will usually nest those in another group which you will actually look at, i.e. ((x)+). So 0x30 was found, but the second group’s content was then overwritten by the other match, 0x33. –  poke Dec 11 '12 at 10:49
    
How to 'keep' all of them instead? I.e. all matches for the inner group? –  Alex Dec 11 '12 at 10:51
    
It’s not possible to do that. You could run another findall on the outer group though with 0x[0-9af]{2} as the regexp. Or, as you know that it will always be groups of 4 characters, just split it into 4 character groups. –  poke Dec 11 '12 at 11:18

You are trying to repeat the character class [] instead of a group. So you are basically asking for any amount of 0x[0-9a-f]{2,2} characters (so xxxx would also match).

This might work better:

a = re.compile('0x100x200x3f0x2d((0x[0-9a-f]{2})+)0xd0xa')
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Ok I think I see the problem. So one should never have two [] nested? I now have two results, [('0x300x33', '0x33')]. I want the first in this list only. Is there a way to tell the regex to return only the longest matching string? –  Alex Dec 11 '12 at 10:23
    
@Alex: The [] syntax cannot be nested. It means: "match any character inside here", so everything you put there is not processed as a regex. To obtain the match with maximum length just do max(('0x300x33', '0x33'), key=len), but it depends on which method of the regex object you are calling(I believe you are using findall or finditer, right?) –  Bakuriu Dec 11 '12 at 10:33
    
When I use findall it scans the string from left to right, returning the matches in the order found. With that I should be fine to just refer to a.findall(...)[0][0]. But I do not quite understand the reason for the double-index... –  Alex Dec 11 '12 at 10:36
    
@Alex findall returns a list of all matches it can find within the string. So the first [0] returns the first match. Each match now is an array of all matched groups within the match, so the second [0] will return the first group. If you are only interested in the first result, you can also just use a.search(...).group(1). –  poke Dec 11 '12 at 10:39

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