Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an input field in a form that I have to check for certain markup that we have setup.

The delimiter is {!, }.

I would like to match everything that's inside the delimiters.

content = /regex/g.exec('{!content}')

futher more the input string can have more than one markup in it.

input = '{!content} {!other}';
['content','other'] = /regex/g.exec('{!content} {!other}')

This is the first part of the problem, now it gets to the fun part.

I also have where certain markup delimiters are not ended correctly and I have to check for those also.

In this case I would like to get:

input = '{!content {!other} {!broken';
['{!content', 'other', '{!broken'] = /regex/g.exec(input);

Update * found a case where the orginal solution from @MikeM is not capturing something that I would like. If the starting delimiter is by itself, I need those to show up in the results array. If the starting delimiter is at the end of the string then it wont capture.

input = '{!content {!other} {!';
['{!content', 'other', '{!'] = /regex/g.exec(input);
share|improve this question
    
Please read the faq on how to format your questions properly with markdown. –  elclanrs Feb 1 '13 at 23:16
    
is that better? :) –  Bruce Lim Feb 1 '13 at 23:32
1  
Regarding your edit: just change the last + to *, i.e one or more to zero or more, so the regex becomes /\{!([^{}]+)\}|(\{![^{}]*)/g. –  MikeM Feb 8 '13 at 19:29
    
you know I tried that before my update and it didnt work, possibly cache didn't clear when I refreshed my browser :( ... Thank you again. –  Bruce Lim Feb 8 '13 at 23:07
add comment

2 Answers

up vote 2 down vote accepted

You could use the following if { and } are not allowed in the content

var m,    
    result = [],
    str = '{!content {!other} {!broken',
    reg = /\{!([^{}]+)\}|(\{![^{}]+)/g;

while ( m = reg.exec( str ) ) {
    result.push( m[1] || m[2] );
}

console.log( result );   // [ "{!content ", "other", "{!broken" ]

It would though, grab the spaces following unclosed content.

Update:

To capture content without including any leading or trailing whitespace you could use the following - written in longer form for clarity.

var m,    
    result = [],
    str = '{!content {!other} {!broken  {!    broken {! content }',
    reg = /\{!\s*([^{}]+?)\s*\}|\{!\s*([^{}]+?)\s*(?=\{|$)/g;

m = reg.exec( str );

while ( m != null ) {   

    if ( m[1] != null ) {
        result.push( m[1] );
    } else {  // m[2] cannot be null
        result.push( '{!' + m[2] );
    }
    m = reg.exec( str );
}

console.log( result );   
// [ "{!content", "other", "{!broken", "content", "{!broken", "content" ]

For more on exec, see MDN exec.

share|improve this answer
    
I really need to learn more of how to use this site correctly so that it eases the pain for people who are trying. Thank you all. Damn ending line double space line breaks!!!! –  Bruce Lim Feb 2 '13 at 0:00
    
Even '{!content {!other} {!broken this will be part of broken {!good} missingleft}' works –  Bruce Lim Feb 2 '13 at 0:03
    
That's a good approach, not allowing braces in the content ([^{}]) makes it a lot easier. Good thinking! –  Plynx Feb 2 '13 at 0:13
add comment

Returns an array of matches:

(str.match(/\{\!.*?.(?=[\{\}])|\{\!.+?$/g)||[]).map(function(m){return m.substring(2);});
  • (_.match(...)||[]) is an idiom. Match returns null if there is no match found, but it's usually more convenient to get an empty array instead. ||[] fixes that.
  • The regular expression finds matches between {! and terminators in an non-greedy way. That is, it's looking for the first } it can find after the {!. We also have to be tolerant of running into a mismatching open brace { and the end of the line and pass these through as possible matches.

    enter image description here

  • Matches from the above always start with {! but have no terminating delimiter. The only thing left to do is to peel it off, so we can map the array to substring(2). If you want to get rid of whitespaces before and after, you could make this substring(2).trim().
share|improve this answer
    
match doesn't capture groups AFAIK so the result will have the delimiters included. –  elclanrs Feb 1 '13 at 23:15
    
sorry I added more to the question. –  Bruce Lim Feb 1 '13 at 23:15
    
@elcanrs That depends on if the regex is g –  Plynx Feb 1 '13 at 23:16
    
yes it will be global. –  Bruce Lim Feb 1 '13 at 23:16
1  
regexper.com Great tool. As printed, and especially with escape character, regular expressions aren't friendly for visual parsing, no? –  Plynx Feb 2 '13 at 0:05
show 12 more comments

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.