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How can I convert: from: '\\x3c' to: '<';

I tried:

s=eval(s.replace("\\\\", "")); 

does not work. How I do this? Thanks in advance!

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3 Answers 3

up vote 7 down vote accepted

Use String.fromCharCode instead of eval, and parseInt using base 16:

s=String.fromCharCode(parseInt(s.substr(2), 16));
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1  
+1 great answer! –  maerics Aug 24 '11 at 15:34
1  
+1, a shorter alternative would be String.fromCharCode(+("0"+s.slice(1))); –  Andy E Aug 24 '11 at 15:59
    
@Andy Even shorter: String.fromCharCode("0"+s.slice(1)); –  Digital Plane Aug 25 '11 at 6:55
    
@DigitalPlane: of course, fromCharCode casts to an int for you! doh! :-) –  Andy E Aug 25 '11 at 8:35

If you're using jQuery, try this: $('<div>').html('\x3c').text()

Else (taken from here)

function htmlDecode(input){
  var e = document.createElement('div');
  e.innerHTML = input;
  return e.childNodes.length === 0 ? "" : e.childNodes[0].nodeValue;
}
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It's not solution for my case, but I enjoy reading you code. –  Jack Aug 29 '11 at 18:40

One way to do it, which will incur the wrath of people who believe that "eval" is unequivocally evil, is as follows:

var s = "\\x3c";
var s2 = eval('"' + s + '"'); // => "<"
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I wouldn't say eval is unequivocally evil, but I would say that this isn't really an acceptable use of eval (since alternative options exist). –  Andy E Aug 24 '11 at 16:08
    
@Andy E: ok, I'll take the bait =) I agree the String.fromCharCode is the right way but assuming we have validated the input (e.g. ensured it can only be an escaped character reference) then what's the potential harm in using eval here? To me it seems like one of the few times where it is ok. –  maerics Aug 24 '11 at 16:47
    
I wasn't fishing ;-) But since you asked, eval is not only avoided for its security risks when passed unsanitised values, but also for its poor performance. Although eval itself is slow (since it invokes the js compiler), it also makes the code around it slow. The reason for this is, where a compiler would normally make optimizations as it interprets code, it cannot know the result of the eval'd expression and therefore cannot make such optimizations. There are uses for eval, but in the end it's the dev's decision to look at alternative solutions before taking the plunge. –  Andy E Aug 25 '11 at 0:36

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