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I want a regex that will match:

A type with an ID:

[Image=4b5da003ee133e8368000002]
[Video=679hfpam9v56dh800khfdd32]

With between 0 and n additional options separated with @:

[Image=4b5da003ee133e8368000002@size:small]
[Image=4b5da003ee133e8368000002@size:small@media:true]

I have this so far :

\[[a-zA-Z]*=[a-zA-Z0-9]*[@[a-zA-Z]*:[a-zA-Z]*]*\]

... but it's not matching all the cases.

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This is solved, but it made me run into another problem adressed here: stackoverflow.com/questions/2230372/… – marcgg Feb 9 '10 at 15:56
up vote 5 down vote accepted
\[[a-zA-Z]+=[a-zA-Z0-9]{24}(@[a-zA-Z]+:[a-zA-Z]+)*\]
                           ^                    ^

You were enclosing that section with [], which as you are aware, is for a class, you just want a grouping. You should also ensure that the first match has at least one character, and it seems the id block has 24characters always, if this is the case use, {X} to define a repetition of length X.

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thank you, that was the problem – marcgg Feb 9 '10 at 14:56
    
There is still one issue: if you do this, it won't get all the options, only the last one. In the example " [Image=4b5da003ee133e8368000002@size:small@media:true]" I can only retrieve "@media:true" when I also need size:true – marcgg Feb 9 '10 at 15:01
    
That's what the trailing * is for. if you want to group the WHOLE section into one variable, another pair of round brackets are required, and add a '?:' after the opening inner parens. This will avoid creating a backreference. The next match for you should be in the next variable in the current case. – nlucaroni Feb 9 '10 at 15:13
    
You should check the standards of ruby to see how it supports (?:data) – nlucaroni Feb 9 '10 at 15:16
    
@nlycaroni: I'm not sure what you mean. Let's say I want to get "size:small" and "media:true" in two separate variables, how should I proceed ? This is kind of outside the scope of this question but... :) – marcgg Feb 9 '10 at 15:22

Shouldn't the additional options be grouped (instead of brackets!) and marked optional (instead of *)? And you should use + instead of * or else an empty string would be matched.

\[[a-zA-Z]+=[a-zA-Z0-9]+(@[a-zA-Z]*:[a-zA-Z]*)*\]
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Thanks you for the answer. nlucaroni was faster so he gets the check, but this is correct as well – marcgg Feb 9 '10 at 14:58
    
I'd expand on that further and make both the key and value required when an optional field is present, although the OP didn't account for this in the question. \[[a-zA-Z]+=[a-zA-Z0-9]+(@[a-zA-Z]+:[a-zA-Z]+)?\] – Jimmy Cuadra Feb 9 '10 at 14:59
1  
? is the wrong quantifier for (@[a-zA-Z]*:[a-zA-Z]*). There are between 0 to n additional options. – Erlock Feb 9 '10 at 15:03
    
@Erlock: Corrected. – AndiDog Feb 9 '10 at 15:09
\[[a-zA-Z]+=[a-zA-Z0-9]+(@[a-zA-Z]+:[a-zA-Z]+)*\]

You need to enclose the optional group in parentheses, not brackets.

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Like I said to andidog, nlucaroni was faster so he gets the check, but this is correct as well. Thanks :) – marcgg Feb 9 '10 at 14:58
^\[\w+=\w+(@\w+:\w+)*\]$

I guess it should be possible to be more specific.

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1  
Interesting solution but it would also include underscores, which I don't want – marcgg Feb 9 '10 at 15:04
\[[a-zA-Z]+=[a-zA-Z0-9]+(@[a-zA-Z]+:[a-zA-Z]+)?\]

I think this will be little better :)

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