Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a function in moduleA that must run prior to the loading of moduleB. ModuleA isn't dependent on any other module and moduleB has some dependencies (moduleC for instance). The following code does it and works fine when it's not optimized:

main-config.js

require.config({
    paths: {
        moduleA: 'modules/moduleA',
        moduleB: "modules/moduleB",       
        moduleC: "modules/moduleC",
    }
});

require(['moduleA'], function (moduleA) {
    moduleA.init(function () {
        require(['moduleB'], function (moduleB) {
            moduleB.start();
        });
    });
});

However, when optimizing it with r.js, things are getting messed. The output of the r.js optimizer is:

Tracing dependencies for: ../scripts/main-config
Uglifying file: C:/.../scripts/main-config.js

C:/.../scripts/main-config.js
----------------
C:/.../scripts/libs/require/require.js
C:/.../scripts/modules/moduleA.js
C:/.../scripts/main-config.js

Which means that only the 3 modules - require, moduleA and main-config - are uglified together to 1 minimized file. All of moduleB's dependencies (such as moduleC) are missing from the output file.

Changing the config file to the following, will include all of moduleB's dependencies in the output file, but it will not get the needed result since it parses moduleB before moduleA's init function:

require(['moduleA','moduleB'], function (moduleA, moduleB) {
    moduleA.init(function () {
        moduleB.start();
    });
});

I want moduleB to be parsed later, only after moduleA's init function (moduleB contains some immediate functions).

How can I get all the dependency tree to be included in the result file, but with my needed behavior (parse&run moduleB after a function of moduleA finishes)? Thanks.

share|improve this question
up vote 1 down vote accepted

This happens because require for moduleB is nested and potentially dynamic; by default r.js won't include such dependencies in the output. To override this default behaviour you can set findNestedDependencies to true (more details in the example buildconfig file).

Alternatively, if you don't want to change this flag for the whole project and you only want to make an exception for this single dependency, you can add the module element to your buildconfig:

modules: [{
    name: "main-config",
    // forces moduleB to be included
    include: ["moduleB"]
  },
  // ...
share|improve this answer
    
findNestedDependencies did the job. Thanks! – Haji Nov 12 '13 at 15:15

One way is with this little project I wrote: require-lazy

With this you would do:

require(['moduleA','lazy!moduleB'], function (moduleA, lazyModuleB) {
    moduleA.init(function () {
        lazyModuleB.get().then(function(moduleB) {
            moduleB.start();
        });
    });
});

In order to use require-lazy, you will need to modify your building process a bit, see the examples (simple or grunt/bower).


Otherwise you will have to restructure moduleB to not require that functions in moduleA are run; it could require moduleA and run those functions itself.

Also try requiring moduleA from moduleB anyway, this could solve the problem.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.