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I'm using Firebug 1.5.4. When I reference an undefined variable or some such, it breaks right where the problem occurs, and throws me into the debug view where I can see the stack and inspect variables.

However, when I throw my own exception, it just takes me to the console and prints out "uncaught exception: blah". I'd like it to break and let me inspect variables. How can I tell Firebug to do this?

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So did that work for you, then? More problems? – rfunduk Sep 22 '10 at 14:54

4 Answers 4

Install Firebug 1.6b1, Firebug > Console > "the exception" Click the breakpoint selector in the left column. Run your code. Firebug breaks on that line.

Or Firebug > Console > [||] breaks on next error

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If the exception only occurs rarely on a very commonly called line of code, though, that gets annoying very quickly. – pioto Nov 4 '10 at 15:05
In Firebug 1.7 it is named Track Throw/Catch – Denis Nikolaenko May 11 '11 at 12:08
up vote 5 down vote accepted

The respondent was helpful but neglected something very key I was missing; the window.onerror event. Here is the full code:

 window.onerror = function(msg) {
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That doesn't seem to give me a useful stack trace still. My stack just shows the onerror() call, not the code where the exception occurred. – pioto Nov 4 '10 at 15:09
Try this: var arg = arguments[4]; s.stack; This is while you are still breakpointed in window.onerror – TMT020 Jun 24 at 13:33

Call Web Developer Debugger (Tools => Web Developer => Debugger or Ctrl + Shift + S), click gear icon and check "Pause on exception":

enter image description here

Or execute debugger; in Web Developer Console!

Official Web Developer Debugger docs:

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Put a debugger; statement in your code or use the Script tab of firebug to click on a line number (which inserts a breakpoint).

If you only want to do it when you throw an exception, you could put the debugger statement in a catch block.

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It is not feasible to use a breakpoint in this case since the exception might not occur until the 100th time through the code, and I don't want to step through it 100 times. I am only interested if/when an exception occurs. But tell me more about this "debugger;" thing... – Kevin Pauli Sep 20 '10 at 19:14
Ok so when you catch your exception, in the catch block, but debugger; in there (or insert a breakpoint there in firebug). That way you'll only get dropped into the debugger when the exception happens. – rfunduk Sep 20 '10 at 19:24
In the context of your question the code debugger; is simply the same as inserting a breakpoint in firebug on that line. – rfunduk Sep 20 '10 at 19:25
The question is not making sense. There isn't 100 times here. You said you are throwing an exception: so that is where you set a breakpoint or put debugger; statement or console.error() or what ever. Unless you hit the exception 100 times, in which case you have more problems than we can solve here. – johnjbarton Nov 23 '10 at 5:08

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