43

When I try to merge two objects using the spread operator conditionally, it works when the condition is true or false:

let condition = false;
let obj1 = { key1: 'value1'}
let obj2 = {
  key2: 'value2',
  ...(condition && obj1),
};

// obj2 = {key2: 'value2'};

When I try to use the same logic with Arrays, it only works when the condition is true:

let condition = true;
let arr1 = ['value1'];
let arr2 = ['value2', ...(condition && arr1)];

// arr2 = ['value2', 'value1']

If the condition is false an error is thrown:

let condition = false;
let arr1 = ['value1'];
let arr2 = ['value2', ...(condition && arr1)];

// Error

Why is the behaviour different between Array and Object?

  • 1
    Not cleared. What do you want to achieve here? Can you please paste your (condition && arr) as well? – narayansharma91 May 7 at 11:34
  • FYI, { ...null } and { ...undefined } won't throw error either. So, we can forgo that check as well if we are unsure if an object has value or not – adiga May 7 at 12:13
  • 2
    FWIW if you wanted to spread booleans, you could do something like Boolean.prototype[Symbol.iterator] = function* () {} (obviously don't do this in production code, it's a mere curio) – Conor O'Brien May 7 at 14:00
  • Is what you really want to achieve condition ? [...arr1, ...arr2] : arr1 or is this just a question on how the language works? – JollyJoker May 7 at 14:20
  • 3
    @JollyJoker it's just a question on how the language works. Thanks – João Rodrigues May 7 at 14:34
45

When you spread into an array, you call the Symbol.iterator method on the object. && evaluates to the first falsey value (or the last truthy value, if all are truthy), so

let arr2 = ['value2', ...(condition && arr)];

results in

let arr2 = ['value2', ...(false)];

But false does not have a Symbol.iterator method.

You could use the conditional operator instead, and spread an empty array if the condition is false:

let condition = false;
let arr1 = ['value1'];
let arr2 = ['value2', ...(condition ? arr1 : [])];
console.log(arr2);

(This works because the empty array does have the Symbol.iterator method)

Object spread is completely different: it copies own enumerable properties from a provided object onto a new object. false does not have any own enumerable properties, so nothing gets copied.

17

false is not spreadable.

You need a spreadable object (the one where Symbol.iterator is implemented) which returns nothing, if spreaded.

You could use an empty array as default value. This works even if arr is falsy.

let condition = false;
let arr1 = ['value1'];
let arr2 = ['value2', ...(condition && arr || [])];

console.log(arr2);

  • would add parenthesis to make it clearer ((condition && arr) || []) – Grégory NEUT May 7 at 11:37
  • 6
    This could really use the ?: operator instead of a chained ||. – deceze May 7 at 11:37
  • @deceze, it really depends on the use case. – Nina Scholz May 7 at 11:39
  • 7
    I think this is a use case where ?: is a lot more appropriate. ;) – deceze May 7 at 11:39
11

This is a specification difference between the spread syntax for object literals and for array literals.

MDN briefly mentions it here -- I highlight:

Spread syntax (other than in the case of spread properties) can be applied only to iterable objects

The difference comes from the EcmaScript 2018 specification:

  • Concerning object spread syntax, see 12.2.6.8 Runtime Semantics: PropertyDefinitionEvaluation:

    • It calls CopyDataProperties(object, fromValue, excludedNames) where the fromValue is wrapped to an object with ToObject, and therefore becomes iterable, even if fromValue is a primitive value like false. Therefore {...false} is valid EcmaScript.
  • Concerning array spread syntax, see 12.2.5.2 Runtime Semantics: ArrayAccumulation:

    • It merely calls GetValue(spreadRef) which does not do the above mentioned wrapping. And so the subsequent call to GetIterator will trigger an error on a primitive value, as it is not iterable. Therefore [...false] is invalid EcmaScript.

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