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why does this code return false:

var text = "3b3xx";
if(text.match("/^\d?b\d+xx$/")) {
    return true;
}
return false;

I can not see any problem with my regular expression.. I want to return true, if the string starts with any numbers, followed by "b", followed by any numers, followed by "xx".

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4 Answers 4

That's a string, not a regex.

Remove the "".

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4  
@groh Please watch the language. This is a classy place, and young people browse it regularly. And get some sleep. :-) –  Wiseguy Jul 15 '11 at 17:01

You are passing a string where a regular expression is expected.

var text = "3b3xx";
if(text.match(/^\d?b\d+xx$/)) {
    return true;
}
return false;
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Actually, you can pass a string, and the match method will convert it to a RegExp object internally, e.g. : if (text.match("^\\d?b\\d+xx$")) but anyway, in this case is completelly unnecessary - since the pattern is fixed-, I would even return /^\d?b\d+xx$/.test(text); to remove the if statement. –  CMS Jul 15 '11 at 17:03
    
@CMS and the match method will convert it to a RegExp object internally": not in my Chrome it won't. –  KooiInc Jul 15 '11 at 17:10
    
@KooiInc: Really? In which version of Chrome are you testing? Try: 'a'.match('\\w')[0] == 'a'. If it doesn't work, it's an implementation bug, the behavior is completely described on the ECMAScript Specification (15.5.4.10 - see Step 4 -) –  CMS Jul 15 '11 at 17:23
    
It works if you pass a String without the / /. –  pimvdb Jul 15 '11 at 17:46
    
using Chrome 12.0.742.112. But forgot to escape the escapes :}. Still, I wouldn't use this javascript 'dynamic typing feature'. –  KooiInc Jul 15 '11 at 19:01

Why not trying this:

var text = "3b3xx";
return text.match(/^\d?b\d+xx$/);
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Just lose the quotes around your regex.

Regex is an object in Javascript, not a String.

/^\d?b\d+xx$/

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