using preg_match_all to find patterns, don't include pattern deliminator in matchs

Question

I'm matching patterns with reg_ex as in

$Structure = 'C:N:X:A:V:T:J:N:G:T:N:N:C:J:N:C:A:J:N:.:';
preg_match_all('/(T:|G:|L:|D:).*?(G:|i:|X:|\.:)/', $Structure, $arr, PREG_SET_ORDER);

the results I get are

T:J:N:G: , T:N:N:C:J:N:C:A:J:N:.: 

How can I modify the query so that the deliminator (G:|i:|X:|.:) of the match is not included in the find, but will bu used in the next search. In other words make the result look as bellow:

T:J:N: , G:T:N:N:C:J:N:C:A:J:N: 

instead?

Is this possible?

Thanks

Answer 1

It is possible by lookaheads, with the following syntax:

(?=G:|i:|X:|\.:)

That will not consume the piece that matches the regex.

On a side note, the delimiter means the slashes that you have enclosing your regex and not the capturing group you have.

Answer 2

Yes, instead of making your 2nd capturing group consume the input, turn it into a positive lookahead:

/(T:|G:|L:|D:).*?(?=(?:G:|i:|X:|\.:))/

Now, instead of matching (and consuming) the delimiter, this:

(?=(?:G:|i:|X:|\.:))

States that the regex must assert that the delimiter is present from the current point forward, i.e. a positive lookahead.

This results in:

"T:J:N:, G:T:N:N:C:J:N:C:A:J:N:"