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I'm fairly new to Javascript development so this might be a real newbie question.

I've got a application riddled with console.log(); for debugging purposes.

I've got doing all of my build time combining. It outputs a app.debug.js for debugging as well as a app.min.js for production

Now I could go through all of my code files looking for console.log(); and delete it manually when I'm ready to go to production, but I'm wondering if there's a way to override the method.

Basically, whenever the console.log(); method is called, DO NOTHING.

That way, I can put the override code file in my production config, and NOT in my debug config.

Is this possible?

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2  
create your own object with the name console with log function that does nothing/only function definition. –  Sarfraz Aug 12 '11 at 15:43
2  
Here is a great way to override the console.log function, Yet preserve the original functionality of the function... udidu.blogspot.co.il/2012/12/override-console-functions.html –  udidu Dec 17 '12 at 10:47

10 Answers 10

up vote 73 down vote accepted

Put this at the top of the file:

var console = {};
console.log = function(){};

For some browsers and minifiers, you may need to apply this onto the window object.

window.console = console;
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1  
simple and BEAUTIFUL. I knew it was pretty newb. Thanks! –  Chase Florell Aug 12 '11 at 15:43
    
sometimes it bugs me that I have to wait 15 minutes before accepting an answer when it's CLEARLY the right answer. –  Chase Florell Aug 12 '11 at 15:44
29  
Don't forget to override console.info, console.warn and console.error too, if you use those –  Flambino Aug 12 '11 at 15:44
1  
@rockinthesixstring ^_^ no problemo –  Neal Aug 12 '11 at 15:44
    
@Flambino -- that is true. –  Neal Aug 12 '11 at 15:45
console.log = function(){};

Override it like any other thing.

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5  
-1. Do not do this! The line here will both throw a ReferenceError and leave console.log undefined on browsers where the console object does not exist, which is an issue for at least some versions of IE. If your objective is to make your web app production-ready, like the OP, then this is almost not the solution you need. Do what Neal wrote instead. –  Mark Amery Apr 16 '13 at 22:56
    
@MarkAmery You're correct. I took the literal meaning of "override", as in "replace", so of course I assumed an original existed. –  Zirak Apr 17 '13 at 3:54

It would be super useful to be able to toggle logging in the production build. The code below turns the logger off by default.

When I need to see logs, I just type debug(true) into the console.

var consoleHolder = console;
function debug(bool){
    if(!bool){
        consoleHolder = console;
        console = {};
        console.log = function(){};
    }else
        console = consoleHolder;
}
debug(false);
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I use something similar to what posit labs does. Save the console in a closure and you have it all in one portable function.

var GlobalDebug = (function () {
    var savedConsole = console;
    return function(debugOn,suppressAll){
        var suppress = suppressAll || false;
        if (debugOn === false) {
            console = {};
            console.log = function () { };
            if(suppress) {
                console.info = function () { };
                console.warn = function () { };
                console.error = function () { };
            } else {
                console.info = savedConsole.info;
                console.warn = savedConsole.warn;
                console.error = savedConsole.error;              
            }
        } else {
            console = savedConsole;
        }
    }
})();

Just do globalDebug(false) to toggle log messages off or globalDebug(false,true) to remove all console messages.

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Theres no a reason to let all that console.log all over your project in prod enviroment... If you want to do it on the proper way, add UglifyJS2 to your deployment process using "drop_console" option.

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Discarding console calls rather than keeping them for error context isn't really great. Although I can see why you'd want to do this, if you didn't have proper error and log management –  sleepycal May 10 at 17:10
    
If I set a particular cookie/header, debug mode is enabled and unminified js is loaded (also server statics are logged on browser console). –  neiker Jul 15 at 16:01

Just remember that with this method each console.log call will still do a call to a (empty) function causing overhead, if there are 100 console.log commands, you are still doing 100 calls to a blank function.

Not sure how much overhead this would cause, but there will be some, it would be preferable to have a flag to turn debug on then use something along the lines of:

var debug=true; if (debug) console.log('blah')
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2  
that would involve going through all of the code and adding those if statements -- which is tedious. –  Neal Sep 8 '11 at 16:28
    
It does require more code, but this technique has its advantages: debug can be toggled at runtime; and when debug is false, there is no inefficient building of strings which will be immediately discarded. So developers can write heavy logging without hurting production performance, but still get that information from clients if they really need it. –  joeytwiddle Jul 15 at 20:40

You could also use regex to delete all the console.log() calls in your code if they're no longer required. Any decent IDE will allow you to search and replace these across an entire project, and allow you to preview the matches before committing the change.

\s*console\.log\([^)]+\);
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Thanks for the downvote. I was responding to this part of the question. "I could go through all of my code files looking for console.log(); and delete it manually when I'm ready to go to production" –  Pappa Oct 16 '13 at 21:20

I would recommend using: https://github.com/sunnykgupta/jsLogger

Features:

  1. It safely overrides the console.log.
  2. Takes care if the console is not available (oh yes, you need to factor that too.)
  3. Stores all logs (even if they are suppressed) for later retrieval.
  4. Handles major console functions like log, warn, error, info.

Is open for modifications and will be updated whenever new suggestions come up.

Disclaimer: I am the author of the plugin.

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You can look into UglifyJS: http://jstarrdewar.com/blog/2013/02/28/use-uglify-to-automatically-strip-debug-messages-from-your-javascript/, https://github.com/mishoo/UglifyJS I haven't tried it yet.

Quoting,

 if (typeof DEBUG === 'undefined') DEBUG = true; // will be removed

 function doSomethingCool() {
     DEBUG && console.log("something cool just happened"); // will be removed }

...The log message line will be removed by Uglify's dead-code remover (since it will erase any conditional that will always evaluate to false). So will that first conditional. But when you are testing as uncompressed code, DEBUG will start out undefined, the first conditional will set it to true, and all your console.log() messages will work.

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After read a lot of posts, I made my own solution as follow:

SCRIPT:

function extendConsole() {
    "use strict";
    try {
        var disabledConsoles = {};

        console.enable = function (level, enabled) {
            // Prevent errors in browsers without console[level]
            if (window.console === 'undefined' || !window.console || window.console === null) {
                window.console = {};
            }
            if (window.console[level] === 'undefined' || !window.console[level] || window.console[level] == null) {
                window.console[level] = function() {};
            }

            if (enabled) {
                if (disabledConsoles[level]) {
                    window.console[level] = disabledConsoles[level];
                }
                console.info("console." + level + "() was enabled.");
            } else {
                disabledConsoles[level] = window.console[level];
                window.console[level] = function () { };
                console.info("console." + level + "() was disabled.");
            }
        };
    } catch (exception) {
        console.error("extendConsole() threw an exception.");
        console.debug(exception);
    }
}

USAGE:

extendConsole();
console.enable("debug", window.debugMode);

EXAMPLE:

http://jsfiddle.net/rodolphobrock/2rzxb5bo/10/

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