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Is there a way to detect whether invoking a constructor will result in a TypeError without resorting to a try-catch?

I'm trying to avoid try-catch since it has a huge performance hit.


Context: I'm building a clone() function. In jQuery, for instance, an object's constructor is ignored, resulting in this:

function Panda(){}
var p1 = new Panda(),
    p2;

p2 = jQuery.extend(true, {}, (p1));  // cloning
// > Object {}

p2 instanceof Panda;
// > false

At some point, I would like to use this statement in my clone() function, so that I can borrow the constructor to create a new instance:

function clone(obj) {
    ...
    var doppelgangerObj = new obj.constructor();
    ...
}

p2 = clone(p1);

p2 instanceof Panda;
// > true

I've filtered out Arrays and Array-Like objects (NodeLists, Arguments) already, but illegal constructors errors can happen when you pass in un-constructable browser objects like Console or window.navigator.

Hence, is there a way to detect whether invoking a constructor will result in a TypeError without resorting to a try-catch?

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1  
Is that such a bad thing to do? –  Waleed Khan Jan 18 '13 at 17:37
    
Gah. I thought I remembered seeing a huge performance hit to using try{}catch{} last night while I was running some tests. Doesn't seem to be as big an issue as I remembered based on today's data: jsperf.com/belt-core-deep-clone/8 –  sjhcockrell Jan 18 '13 at 17:51
    
Would you be fine with inheriting instead of cloning? p2 = Object.create(p1); p2 instanceof Panda; // true –  bfavaretto Jan 18 '13 at 17:51
    
@bfavaretto That's an interesting solution. Let me run a few tests. –  sjhcockrell Jan 18 '13 at 17:57
    
Just keep in mind it's not the same thing, there are consequences of the shared prototype chain: codepen.io/anon/pen/mAuKJ –  bfavaretto Jan 18 '13 at 18:04
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