Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
var async = require('async');

function callbackhandler(err, results) {
    console.log('It came back with this ' + results);
}   

function takes5Seconds(callback) {
    console.log('Starting 5 second task');
    setTimeout( function() { 
        console.log('Just finshed 5 seconds');
        callback(null, 'five');
    }, 5000);
}   

function takes2Seconds(callback) {
    console.log('Starting 2 second task');
    setTimeout( function() { 
        console.log('Just finshed 2 seconds');
        callback(null, 'two');
    }, 2000); 
}   

async.series([takes2Seconds(callbackhandler), 
              takes5Seconds(callbackhandler)], function(err, results){
    console.log('Result of the whole run is ' + results);
}) 

The output looks like below :

Starting 2 second task
Starting 5 second task
Just finshed 2 seconds
It came back with this two
Just finshed 5 seconds
It came back with this five

I was expecting the takes2Second function to finish completely before the takes5Second starts. Is that how it is supposed to work. Please let me know. And the final function never runs. Thanks.

share|improve this question

4 Answers 4

up vote 8 down vote accepted

Not quite. You are executing the functions immediately (as soon as the array is evaluated), which is why they appear to start at the same time.

The callback passed to each of the functions to be executed is internal to the async library. You execute it once your function has completed, passing an error and/or a value. You don't need to define that function yourself.

The final function never runs in your case because the callback function that async needs you to invoke to move on to the next function in the series never actually gets executed (only your callbackHandler function gets executed).

Try this instead:

async.series([
    takes2Seconds,
    takes5seconds
], function (err, results) {
    // Here, results is an array of the value from each function
    console.log(results); // ['one', 'two']
});
share|improve this answer
    
James, thanks for your clear explanation on what is going on. It works after I made those changes as suggested.Is it possible to pass arguments to these functions? –  voicestreams Apr 13 '13 at 5:11
1  
On further reading of the docs, looks like i should use async.apply to pass in arguments to functions. –  voicestreams Apr 13 '13 at 5:59

James gave you a good overview of async.series. Note that you can setup anonymous functions in the series array and then call your actual functions with parameters

var async = require('async')
var param1 = 'foobar'
function withParams(param1, callback) {
  console.log('withParams function called')
  console.log(param1)
  callback()
}
function withoutParams(callback) {
  console.log('withoutParams function called')
  callback()
}
async.series([
  function(callback) {
    withParams(param1, callback)
  },
  withoutParams
], function(err) {
  console.log('all functions complete')
})
share|improve this answer
    
Noah, Yes i eventually figured that out. Thanks for posting it anyways. –  voicestreams Apr 14 '13 at 1:30

My preferred way to create the async series is using operational array as follow;

var async = require('async'),
    operations = [];

operations.push(takes2Seconds);
operations.push(takes5seconds);

async.series(operations, function (err, results) {
    // results[1]
    // results[2]
});

function takes2Seconds(callback) {
    callback(null, results);
}

function takes5seconds(callback) {
    callback(null, results);
}
share|improve this answer
async.series
    ([  
        function (callback)
        {
            response=wsCall.post(user,url,method,response);
            console.log("one");
            callback();
        }
        ,
        function (callback)
        {
            console.log("two");
            //console.log(response);
            callback();
        }
    ]
    ,
    function(err) 
    {
        console.log('Both a and b are saved now');
        console.log(response);
    });
share|improve this answer
    
Welcome to SO, and thanks for your answer. This answer would be a lot more useful if it was formatted correctly and explained a little. Not that your help isn't appreciated, but as it stands your answer is likely to be removed because of its quality issues, which doesn't benefit you or anyone else in the community. –  Engineer Dollery May 20 at 19:41

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.