In index.js I have a require function and some extra stuff right bellow.

The required module has a delay in execution;

index.js

console.log('1')
var delay_function = require('./delay_function')
console.log('2')

delay_function.js

    var fetch = require('node-fetch');

    fetch('http://example.com/api').then(function(res){
        console.log('wuhu');
    });

The result of the two scripts above is:

    1
    2
    wuhu

instead of:

    1
    wuhu
    2

I am new to node and trying to understand how the require function works, but the documentation is so scattered that it's overwhelming.

How can I make the two scripts execute in the order I need them too?

up vote 1 down vote accepted

What you see is perfectly normal.

In your delay_function.js you start a fetch operation in the background, we say the call is non-blocking. It allows node to do other things while the data is begin fetched.

Here is a solution to your problem:

delay_function.js

var fetch = require('node-fetch');
var task = fetch('http://example.com/api');        
task.then(function(res){
    console.log('wuhu');
});

module.exports = task;

index.js

console.log('1')
require('./delay_function').then(function(res) {
  console.log('2')
}

Explaination

The delay_function.js, when required start fetching the result, display wuhu when the fetch is done and returns (using module.exports) the background task, so to say. In the index you retrieve the background task and display 2 when it is done.

Javascript is non blocking so when you require, it doesn't block the execution and display 2 right away. when fetch finish, it display wuhu.

To do that in order, you can use Promise.

Basically it will look like this

doThis().then(doThat)

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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