1

I'm trying to understand how the callback function works inside the setTimeout function. I'm aware the format is: setTimeout(callback, delay) I wrote a little test script to explore this.

test1.js

console.log("Hello")

setTimeout(function () { console.log("Goodbye!") }, 5000)

console.log("Non-blocking")

This works as expected, printing Hello <CRLF> Non-blocking and then 5 seconds later, prints Goodbye!

I then wanted to bring the function outside of the setTimeout like this:

console.log("Hello")

setTimeout(goodbye(), 5000)

console.log("Non-blocking")

function goodbye () {
    console.log("Goodbye")
}

but it doesn't work and there isn't a 5 second delay between Non-blocking and Goodbye!, they print straight after each other.

It works if I remove the brackets from the function call in the timeout, like this:

setTimeout(goodbye, 5000)

but this doesn't make sense to me because that's not how you call a function. Futhermore, how would you pass arguments to the function if it looked like this?!

var name = "Adam"    

console.log("Hello")

setTimeout(goodbye(name), 5000)

console.log("Non-blocking")

function goodbye (name) {
    console.log("Goodbye "+name)
}

My question is really, why doesn't it work when there are parameters in the function, despite the fact the setTimeout is being provided with a valid function with the correct syntax?

  • 2
    It makes perfect sense, you don't want to call the function, you want to reference it so it can be called later by setTimeout, hence no parentheses. This doesn't just go for Node, it's basic javascript. – adeneo Apr 5 '15 at 17:10
  • 1
    If you replace the variable with the function definition, you will notice the difference: Replacing goodbye in setTimeout(goodbye(), 5000) becomes setTimeout(function goodbye() { ... ) }(), 5000). Do you notice the trailing ()? They don't appear in setTimeout(function () { ... }, 5000) – Felix Kling Apr 5 '15 at 17:14
  • And if you think about it, it behaves exactly as expected. setTimeout is not magical, it basically behaves like any other function: Arguments are evaluated before they are passed to the callee. If you have foo(bar()), then bar is executed first and its return value is passed to foo. That's how every function call works in JavaScript. – Felix Kling Apr 5 '15 at 17:17
5

By putting the parentheses after your function name, you are effectively calling it, and not passing the function as a callback.

To provide parameters to the function you are calling:

  1. You can pass an anon function. setTimeout(function(){goodbye(name)}, 5000);
  2. Or, you can pass the arguments as a third parameter. setTimeout(goodbye, 5000, name);

Look at this question: How can I pass a parameter to a setTimeout() callback?

  • Ah that makes sense! I'm guessing the reason it doesn't call the anon function straight away is because it's being declared and not called? Is that right? – admrply Apr 5 '15 at 17:21
  • 1
    Yes. It would have been called if the code was somthing like this. setTimeout(function(){ goodbye(name); }(), 5000); Notice the parentheses at the end of the anon function. – tMJ Apr 5 '15 at 17:23
3

No matter where you place it, goodbye(name) executes the function immediately. So you should instead pass the function itself to setTimeout(): setTimeout(goodbye, 5000, name).

3

When you use it like this:

setTimeout(goodbye(), 5000);

it will first call goodbye to get its return value, then it will call setTimeout using the returned value.

You should call setTimeout with a reference to a callback function, i.e. only specifying the name of the function so that you get its reference instead of calling it:

setTimeout(goodbye, 5000);

To make a function reference when you want to send a parameter to the callback function, you can wrap it in a function expression:

setTimeout(function() { goodbye(name); }, 5000);

You can use parantheses in the call, but then the function should return a function reference to the actual callback function:

setTimeout(createCallback(), 5000);

function createCallback() {
  return function() {
    console.log("Goodbye");
  };
}

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