3

This question already has an answer here:

One of the arguments to my method should be an object. Like usual, I can specify a default value for it in the prototype.

But this default is only used if I omit this argument in a call completely.

Yet I wish for it to apply on field level: if I provide a value but omit some fields that are present in the default, they should be filled in from it:

function method(id, data, options = { original: true, duplicate: true }) {
    console.log(options.original);
    console.log(options.duplicate);
}

method("id", "data", { duplicate: false })
// undefined <= I expect this to be true
// false

method("id", "data")
// true
// true

Any parameters not specified in the default should be accepted as well and passed as is:

method("id", "data", { duplicate: false, other: false })

If there any syntactic facility I can use for that? And, even if there isn't and I must use custom logic, can I somehow extract the default value from the prototype in it?

ES6 Object Destructuring Default Parameters achieves something similar but it converts the "fields" into separate variables (while I wish for them to remain inside the object) and it doesn't allow fields that aren't specified in the prototype.

marked as duplicate by Bergi ecmascript-6 Sep 29 '16 at 5:59

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Define "I want it to be able to pass other options, not only what I defined". How should they behave? – ivan_pozdeev Sep 29 '16 at 13:00
  • In my method function above, I can add another attribute to the options i.e: other: false. But all answers doesn't address that. – shankshera Sep 29 '16 at 21:29
  • @ivan_pozdeev That's a quite substantial edit. Are you sure it follows the OPs intentions? It might have been better to ask a new question. – Bergi Sep 30 '16 at 3:52
  • @Bergi "Are you sure it follows the OPs intentions?" - yes, I am. This is fully in line with example code and the comment. The only questionable bit is the limit on requested means ("syntactic" or extract default) but that's necessary to avoid the "too broad" verdict: not just any solution but close to the way the OP sees his code. – ivan_pozdeev Sep 30 '16 at 6:14
  • And func(({original = false, duplicate = true} = {original: true, duplicate: true}) won't work for you? – user663031 Nov 14 '16 at 4:27
1

You can use default value assignment with the destructuring assignment notation:

function method(id, data, {original, duplicate} = { original: true, duplicate: true }) {
    console.log(original);
    console.log(duplicate);
}
  • That's exactly the behaviour that the OP wants to avoid – Bergi Sep 29 '16 at 5:59
  • How'd you know that he wants to avoid it? Maybe he hasn't read the other answer. – Rax Weber Sep 29 '16 at 6:03
  • "If I call method with only one of defined options, the other options won't get its default value". Your answer uses destructuring, but still has this problem. – Bergi Sep 29 '16 at 6:17
0

Default param values are on a variable-level only, not properties.
You're better off doing something like (pseudo-code):
extend({ original: true, duplicate: true }, options)

Edit:
It actually may be possible using destructuring, try this:
function method(id, data, {original = true, duplicate = true} = {}) {}

  • 1
    What do you mean "may" be possible? Didn't you try it before putting it in the answer? – nnnnnn Sep 29 '16 at 5:54
  • 1
    No :( Didn't have time, am I a bad person? – George Kagan Sep 29 '16 at 6:20
  • 1
    You may be... – nnnnnn Sep 29 '16 at 6:22

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