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javascript - How to achieve lazy loading with RequireJS?

We're building a non-trival web application using Backbone, RequireJS and Handlebars, and well, I'm just curious. At the moment, each of our models sorta looks like this:

define(['Backbone', 'js/thing/a', 'js/thing/b', 'js/lib/bob'], function(a, b, bob) {
  return Backbone.Router.extend({
    // stuff here
  });
});

where thing/a, thing/b both have their own dependencies, for example on Handlebars templates, etc. What happens now is that in my main.js, all of the 'top-level' routers are loaded and initialized; each top-level router has a set of dependencies (models, views, etc) which each have their own dependencies (templates, helpers, utils, etc). Basically, a big tree structure.

The problem in this case is that this entire tree is resolved and loaded on page load. I don't mind that per sé, as we'll run it through the optimizer eventually and end up with one big single file (reducing RequireJS to basically a modularization framework). However, I am curious whether you can load stuff like views and templates 'on demand'.

There is the "simplified CommonJS wrapping" explained here, so I tried that:

define(function(require) {
  Backbone = require('Backbone');
  return Backbone.Router.extend({
    doStuff: function() {
      var MyView = require('js/myView');
      new MyView().render();
    }
  });
});

However, looking at Chrome's network inspector, it seems that RequireJS - somehow, even without triggering the route that triggers the doStuff handler - still loads the myView dependency. Questions:

  • Is this actually possible? Are there black magicks in RequireJS that looks for calls to require() without actually triggering the doStuff route?
  • Is this the theoretically correct way of going about 'on-demand', lazy loading of RequireJS modules and resources?
  • Does the r.js optimizer still work as advertised if you use this notation?
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Is this actually possible? Are there black magicks in RequireJS that looks for calls to require() without actually triggering the doStuff route?

When you use the 'sugar' syntax it uses Function.prototype.toString and a regex to extract your references to require and then lists them as dependencies before running the function. Basically it becomes the normal style of define with an array of deps as the first argument.

Because of this, it doesn't care where your require calls are and that's why conditional statements are ignored (it also explains why those require calls have to use a string literal, and not a variable).

Is this the theoretically correct way of going about 'on-demand', lazy loading of RequireJS modules and resources?

Using the sugar syntax won't allow conditional loading as you've seen. The only way I can think of off the top of my head is to use a require call with an array of deps and a callback:

define(function(require) {
    var module1 = require('module1');

    // This will only load if the condition is true
    if (true) {
        require(['module2'], function(module2) {

        });
    }

    return {};
});

Only downside is another nested function but if you're after performance then this is a valid route.

Does the r.js optimizer still work as advertised if you use this notation?

If you're using the 'sugar' syntax then yes, the optimiser will work fine. An example:

modules/test.js

define(function(require) {
    var $ = require('jquery');
    var _ = require('underscore');

    return {
        bla: true
    }
});

Once compiled by r.js this looks like:

define('modules/test', ['require', 'jquery', 'underscore'], function(require) {
    var $ = require('jquery');
    var _ = require('underscore');

    return {
        bla: true
    }
});

In conclusion you can load stuff conditionally, but as you mentioned, if you intend to optimise the project with r.js then there isn't a huge overhead in just using the sugar syntax.


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