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I'm using r.js to create a one file script for my application using the following command:

r.js -o ./scripts/require.build.json baseUrl=public/js/ name=main out=main.min.js

were require.build.json has the following options:

{
    "paths": {
        "jquery": "plugins/jquery.1.8.2.min",
        "underscore": "plugins/underscore.1.4.2.min",
        "backbone": "plugins/backbone.0.9.2.min"
    },
    "shim": {
        "backbone": {
            "deps": ["jquery", "underscore"],
            "exports": "Backbone"
        },
        "underscore": {
            "exports": "_"
        }
    }
}

my main file is just a simple test case:

/*jslint browser: true */
/*global define: false*/
define(function (require) {
    "use strict";

    var $ = require("jquery"),
        Backbone = require("backbone");

    window.console.log($);
    window.console.log(Backbone);
});

I wonder, how can I avoid r.js from minifying the already minified files of my dependencies (jQuery, Underscore and Backbone) to save time?

share|improve this question
    
Doesn't directly answer your question, but why not use the unminified versions? Makes debugging easier in development and then let r.js handle all the libs and modules for production. –  Simon Smith Dec 8 '12 at 9:23
    
@SimonSmith This configuration is for compressing all files to one for production. By indicating the minified versions does require.js detect they are already minified? –  eliocs Dec 8 '12 at 10:19
    
It will minify everything, uncompressed or not. The way I use require is to have all my modules and js libs (jQuery etc) in their uncompressed state whilst in development. Then I let r.js compress them, whether it's all into one file or multiple ones. Makes life easier for debugging and such with uncompressed libs. –  Simon Smith Dec 8 '12 at 11:28
    
@SimonSmith I understand, I wanted to save time on the build process by avoiding to compress already compressed files. –  eliocs Dec 8 '12 at 12:51

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