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Is it posible to make logging to the console synchronous? I often run into situations where the code execution is faster than dumping the structures. That resolves in outputting already changed objects.

I sure can walk through the code with debugger, make unit tests etc., it's just often convenient to simply console.log stuff just to make a general idea of what is going on.

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3 Answers

up vote 7 down vote accepted

You could create a copy of the object before passing it to console.log. Look here for a function to create a deep copy of your object.

Edit:

Now implemented in Chrome, see here

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Alright, thanks, that sounds viable. Though I would prefer to just somehow override the original console dumping so it's blocking rather than async. –  Mikulas Dite Apr 6 '12 at 10:03
    
The problem is that the object is passed to the console by reference, if you later change the object the output in the console change, too. –  Fox32 Apr 6 '12 at 11:09
    
Oh, I see... I thought it does take a snapshot itself. In that case cloning the object seems to be the only solution. Thanks again. –  Mikulas Dite Apr 6 '12 at 13:11
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I played a little bit with the console, it seem to be passed by reference and if you "open" the object the values are evaluated and stay the same. –  Fox32 Apr 6 '12 at 14:07
    
Seems you are right. What that console does is one sick behavior I really don't like. I can't think of any situation this would be either helpful or expected. It just seems so silly. Oh well. Thanks, I guess I will have to go with custom wrappers and cloning. –  Mikulas Dite Apr 6 '12 at 19:54
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I just got caught by this behaviour, spent some hours until I realized the console is borked, not my code. damn.

Until now I only managed to get expected behaviour with:

console.log(JSON.stringify(obj))

nice side effect is, it expands the objects like {0: "a", 3: "b"}

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Oh that actually fixes everything quite nicely. Thanks for that :) –  Mikulas Dite Aug 11 '12 at 14:16
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Put a breakpoint(see image below) at console.log statement and use controls to step over to next.

enter image description here

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Thanks, but I know I can walk through the code with the debugger. I've even stated that in the original question. –  Mikulas Dite Apr 6 '12 at 10:00
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