85

I've got a function which takes in some arguments. But usage of underscore debounce is :

var lazyLayout = _.debounce(calculateLayout, 300);

But in my case calculateLayout needs some arguments to run. How can I pass them in this case?

Update :

Sample calculateLayout function :

var calculateLayout = function(a,b) {
  console.log('a is ' + a + ' and b is ' + b);
}
3
  • not fully sure about this because I'm not fully hip to underscore yet, but if calculateLayout is a function, then pass the function with the args within an anonymous function. Or did you try this already?
    – 13ruce1337
    May 25, 2014 at 17:31
  • 2
    Uh, the debounce function does pass on the arguments that were given? Just call lazyLayout('a', 'b').
    – Bergi
    May 25, 2014 at 17:36
  • @Gandalf StormCrow, maybe you should unaccept my answer, as it's not really the most elegant solution but i can't delete it as long as it's accepted
    – mgherkins
    Apr 24, 2018 at 15:40

4 Answers 4

314

You don't need an anonymous function in the middle, arguments will automatically be passed to the original function when you run the debounced version.

  var debounceCalculate = _.debounce(calculateLayout, 300);
  debounceCalculate(a,b);

As an advantage you don't have to hardcode-bind the arguments in advance

You can try it and if curious just check the source

2
  • This is good infor to know. Thanks for this. I have a hard time understanding why debounceCalculate is not declared as function here and is just assigned the debounce function and still acts like a function and is able to take the arguments and know that the arguments are for the inside function in the debounce. Why is that ?
    – snowyBunny
    Apr 9, 2021 at 18:36
  • 2
    If you check the source code of _.debounce you'll notice what it returns is a function. That's the power of functional programming and Js includes a bit of it :) Apr 10, 2021 at 12:11
41

You should be able to just use an anonymous function as the first argument, then call whatever you like in it:

_.debounce(function(){
    calculateLayout(20, 30);
}, 300);
3
  • 1
    this is exactly what i meant in my comment. perfect if it works.
    – 13ruce1337
    May 25, 2014 at 17:33
  • 6
    Also, this method would call the inner function multiple times and just apply the debounce on each call instead of it being a single call which is what would be desired. This site explains it all. Mar 5, 2018 at 1:00
  • 1
    as @JakeGould mentioned this will just create 3 debounced functions which get assigned to nothing and dont get called. May 22, 2020 at 17:53
9

@Jamie's answer is better.

I'll keep my original answer as below, although the it should be better to use Jamie's answer if you are familiar with JS:

var calculateLayout = function(a,b) {
  console.log('a is ' + a + ' and b is ' + b);
}

var debounceCalculate = _.debounce(function(a, b){
    calculateLayout(a, b);
}, 300);

debounceCalculate(1, 2);
3
  • 3
    uh... var debounceCalculate = _.debounce(calculateLayout, 300); will suffice
    – Brad Kent
    Feb 23, 2017 at 18:20
  • @BradKent Thanks! I'll keep it as it is today since Jaime has already answered.
    – huan feng
    Feb 26, 2017 at 5:21
  • @jacobhobson Really don't know why you are doing this. First, I answered before Jaime's answer. Second, I think my answer is helpful to those JS beginners who don't quickly think of the args could be Omitted.
    – huan feng
    Apr 17, 2019 at 3:07
5

Since nobody has written the one liner without extra var and function, I'll do it myself:

_.debounce(calculateLayout, 300)(a, b);

Debounce function returns another function, so you can call it just afterwards debounce is executed.

2
  • 14
    Defeats the purpose of debouncing completely
    – Tofandel
    Jan 24, 2020 at 8:32
  • 4
    Isn't this wrong? I set exactly this to an event handler (eg. onClick) and it did not debounce at all. If you set this to an event handler it will always create a new instance of the debounce function Mar 31, 2020 at 15:19

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