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I want to modify an invalid regex rather than throw an error, but I can't get the string of the invalid regex before the error is thrown...

var rex = /t(h)?u(?(1)r|e)sday/.replace(/\(\?\((\d)\)(.+?\|)(.+?)\)/g,'((?!\\$1)$2\\$1$3)').replace(/^\/|\/$/g,'')

This works, but is clearly not the solution I am looking for...

try{
  var rex = /t(h)?u(?(1)r|e)sday/
} catch(e){
  var rex = new RegExp(e.toString().split(/: /)[2].replace(/\(\?\((\d)\)(.+?\|)(.+?)\)/g,'((?!\\$1)$2\\$1$3)').replace(/^\/|\/$/g,''))
}
console.log(rex)

I want to be able to define the regex as a regex, not as a string. Can it be done?

share|improve this question
    
What are you trying to do with this? –  Blender Feb 22 '13 at 11:12
    
I want to be able to define what javascript considers to be invalid regex (in this case, including a conditional (?(1)r|e)), and intercept and modify (so it can be sanitised) it, before the interpreter throws an error. –  Billy Moon Feb 22 '13 at 11:15
    
I get that, but why? –  Blender Feb 22 '13 at 11:15
    
DUPLICATE QUESTION, you also asked stackoverflow.com/questions/15022635/… –  Mörre Feb 22 '13 at 11:28
    
Please explain "I want to be able to define the regex as a regex, not as a string". –  MikeM Feb 22 '13 at 11:52

1 Answer 1

var rex, str = 't(h)?u(?(1)r|e)sday';
try{
  rex = new RegExp( str );
} catch (e) {
  rex = new RegExp( str.replace( /\(\?\((\d)\)(.+?\|)(.+?)\)/g, '((?!\\$1)$2\\$1$3)'; ).replace( /^\/|\/$/g,'' ) )
}
console.log( rex )
share|improve this answer
    
Well, that is better than the way I did it - thanks, but still does not achieve what I want. I really want to be able to make the original definition as a regex, and then modify it later. I am aiming eventually, to extend the RegExp prototype to be able to modify cases like this, so as a first step, I am trying to ascertain, if it is possible to catch and modify invalid regex. –  Billy Moon Feb 22 '13 at 12:17

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