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As soon as I add the below code to my html page, I get:

Uncaught TypeError: Object function (constrname) {
    if(this.constructor.name===constrname){
        return true;
    }

    return false;
} has no method 'exec'

This is the prototype that causes the bug:

Object.prototype.isInstanceOf=function(constrname) {
    if(this.constructor.name===constrname){
        return true;
    }

    return false;
};

Adding prototype seems break jQuery .

Can i exclude some types when define new prototypes to Object type . For example , exclude : jQuery type ,...

i tried the following code but it is in vain :

Object.prototype.isInstanceOf=function(constrname) {
      if(!(this instanceof jQuery)){
              //write here code
      }
}
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3  
No. Instead, make it non-enumerable. Better yet, don't do that at all. –  SLaks Jul 23 '13 at 15:11
    
Could you elaborate on the conditions that cause this error? I'd think jQuery is well-written enough not to break on something like that. –  sabof Jul 23 '13 at 15:14
    
@SLaks thanks for answer;However, who should i make it non-enumerable , and how ? –  عبد النور التومي Jul 23 '13 at 16:36

1 Answer 1

No, this is not possible. The entire point of prototypal inheritance is that objects on the prototype are inherited by every descendant. You cannot remove them.

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