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Sometimes some developers forgot to remove debugger; in javascript code, and it produce javascript error on IE. How can you check (like for the console: if(window.console){console.log('foo');}) if a debugger exists?

BTW: I don't want to detect if the browser is IE, I want a generic method if possible Thanks,

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4 Answers 4

up vote 10 down vote accepted

You cannot.

The best solution would be adding a hook to your version control system to prevent code containing debugger; statements from being committed/pushed.

Asking your devs to search for debugger; or at least have a careful look at the diff before committing is also a solution - but not as effective as hard-rejecting in the VCS.

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Not even with a try ... catch block? –  Marcel Korpel Mar 24 '11 at 11:19
1  
No.. debugger; is meant to break into a debugger, not to be caught. –  ThiefMaster Mar 24 '11 at 11:34

You could attempt to compile a function that declares debugger as a local variable. If debugger is reserved as a keyword, the JS engine will throw an error which you can catch.

var debuggerIsKeyword = false;
try {
    new Function("var debugger;");
} catch(e) {
    debuggerIsKeyword = true;
}

However I'm not sure that knowing whether a keyword exists or not is actually helpful.

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Maybe the safest approach is to have a global include file for all your projects that stubs out the debugger if it doesn't exist:

if (typeof debugger == 'undefined') {
    window.debugger = null;
}

That way calls to debugger just become a reference to null. which is harmless. Seems like a better approach than expecting forgetful developers to wrap each debugger call in an if statement.

The same approach works for console.log, etc.

EDIT: As AndrewF points out, debugger is actually a keyword, not a global, so this won't work. The same effect can be achieved using the following without throwing an error:

window['debugger'] = null;
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3  
debugger is a reserved word, and thus it "may not be used as variables, functions, methods, or object identifiers". This code ought to cause a parse error. –  AndrewF Dec 28 '12 at 4:34

Haven't tried it for lack of an IE, but this should work:

if (typeof console !== 'undefined') {
  console.log("logging enabled");    
}
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1  
My question is about 'debugger'... –  JohnJohnGa Mar 24 '11 at 13:21
    
Then use if (typeof debugger !== 'undefined') {dowhatever();} –  eikes Mar 24 '11 at 13:44
2  
this will never gonna work as debugger is a keyword and not a type... you would not expect 'typeof for' to produce anything meaningful do you? –  Peter Aron Zentai Apr 9 '12 at 12:19
    
if (typeof Debug !== 'undefined') {dowhatever();} –  eikes Apr 10 '12 at 8:49
2  
you can edit your answer to put the correction in. –  Will Ness May 13 '13 at 8:53

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