4

The below is a function fn where expected result is for a, b, c to defined at every call of fn, whether an object parameter is passed or not. If object is passed which sets property, property should be set only for that object.

const fn = (opts = {a:1, b:2, c:3}) => console.log(opts);

when called without parameters the result is

fn() // {a: 1, b: 2, c: 3}

when called with parameter, for example {b:7}, the expected result is

fn({b:7}) // {a: 1, b: 7, c: 3}

however, the actual result is

fn({b:7}) // {b: 7}

Was able to get expected result by defining an object outside of function and using Object.assign() within function body

const settings = {a: 1, b: 2, c: 3};
const fn = opts => {opts = Object.assign({}, settings, opts); console.log(opts)}
fn({b: 7}) // {a: 1, b: 7, c: 3}
fn(); // {a: 1, b: 2, c: 3}
/*
  // does not log error; does not return expected result
  const fn = (opts = Object.assign({}, settings, opts)) => console.log(opts)
 
*/

Can the above result be achieved solely utilizing default parameters, without defining an object to reference outside of function parameters or within function body?

  • I dont think. When you say default argument value, you are referring to 1 variable. So when you pass {b:7}, JS engine will see value is received and will not use default value. You are trying to set default value of an argument's property. – Rajesh Apr 18 '17 at 8:07
  • @Rajesh Developed a solution using two default parameters, see Answer. – guest271314 Apr 18 '17 at 9:18
  • 1
    Notice that there is absolutely nothing wrong with declaring variables inside functions. Please do not abuse further parameters like in your answer. – Bergi Apr 26 '17 at 14:34
  • 1
    Why not simply do const fn = opts => console.log(Object.assign({a: 1, b: 2, c: 3}, opts); - no default parameters needed at all? I'm not sure what your actual problem is. – Bergi Apr 26 '17 at 14:37
  • @Bergi The Question and bounty are clear at OP. Define a single default parameter which is persistent and remains set until changed. If no parameter is passed at function call, the default object is returned. If a parameter is passed that matches a property of the default parameter, that property's value is set; if a property and value are passed which is not set at default parameter, that property and value are set at default parameter. Was able to achieve requirement using two default parameters. The bounty is to determine if the requirement can be achieved using a single default parameter – guest271314 Apr 26 '17 at 14:45
3
+100

Maybe I misunderstood the question, but you seem to be looking for default initialisers for each separate property. For that, you have to use destructuring:

const fn = ({a = 1, b = 2, c = 3} = {}) => console.log({a, b, c});

If you want to keep arbitrary properties, not just those that you know of up front, you might be interested in the object rest/spread properties proposal that allows you to write

const fn = ({a = 1, b = 2, c = 3, ...opts} = {}) => console.log({a, b, c, ...opts});

Can an opts variable as the single object reference be achieved solely utilizing default parameters, without defining an object to reference outside of function parameters or within function body?

No. Parameter declarations are only able to initialise variables with (parts of) the arguments, and possibly (as syntactic sugar) with default values when no or undefined argument (parts) are passed. They are not able to carry out unconditional computations and create variables inialised from the results - which is what you attempt to achieve here.

You are supposed to use the function body for that.

  • Approach does not return expected result. fn({b:7, g:9}) // ReferenceError: g is not defined. The requirement is to define a single variable encompassing all parameters passed. If a property not defined at default parameters is passed, that property is set at the resulting object; if the property is defined, the value is set the the passed value; the same as at stackoverflow.com/a/43468095, though using a single default parameter, instead of two, which that Answer achieves – guest271314 Apr 26 '17 at 14:39
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    "No" is an Answer, if we cannot find a viable option using single default parameter. – guest271314 Apr 26 '17 at 15:02
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    You can keep on trying, or you can treat my answer as an expert opinion on the case. – Bergi Apr 26 '17 at 16:24
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    I'm happy to see someone disagree with me and learn how it is possible. Until then, I stand by my educated guess. – Bergi Apr 26 '17 at 16:37
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    @guest271314 That doesn't work when called with fn({opts: "busted"}). Also it's a syntax error given that rest properties must be the last component of a pattern – Bergi Apr 26 '17 at 23:54
2

No

The best that can be done is either your own answer or this:

const fn = (default_parameters) => { 
  default_parameters = Object.assign({}, {a: 1, b: 2, c: 3},default_parameters);
  console.log('These are the parameters:');
  console.log(default_parameters);
}

    fn();

    fn({b: 7});

    fn({g: 9, x: 10});

The default parameter block is only executed if the value is not set, so your own answer is the best that is on offer ie use two parameters

You can convince yourself of this by creating a code block that will fail if executed and testing that passing a parameter works (to show that the code block is not executed) and testing that not passing a parameter fails (showing that the code block is only executed when no parameter is passed).

This should demonstrate clearly that any paramter passed will prevent the default parameter from being evaluated at all.

    const fn = (default_parameters = (default_parameters = Object.assign({}, {a: 1, b: 2, c: 3},default_parameters))) => { 
      
      console.log('These are the parameters:');
      console.log(default_parameters);
    }

        fn({b: 7});
        
        fn();

        fn({g: 9, x: 10});

  • Answer does not set default parameters – guest271314 Apr 26 '17 at 14:18
  • javascript at Answer still does not set default parameters. – guest271314 Apr 26 '17 at 14:49
  • @guest271314 I get that your question specifically said default parameters but why is this effectually/functionally not the same thing? – spacepickle Apr 26 '17 at 14:54
  • Because it is not the same. – guest271314 Apr 26 '17 at 14:56
  • @guest271314 - im only learning..... In what way is it not the same? – spacepickle Apr 26 '17 at 14:57
0

We can set fn as a variable which returns an arrow function expression. When called set a, b, c and rest parameters reference using spread element at new object, which is returned when the function is invoked.

const fn = ((...opts) => ({a:1,b:2,c:3, ...opts.pop()}));

let opts = fn();

console.log(opts);

opts = fn({b: 7});

console.log(opts);

opts = fn({g: 9, x: 10});

console.log(opts);

Using rest element, Object.assign(), spread element, Array.prototype.map(), setting element that is not an object as value of property reflecting index of element in array.

const fn = ((...opts) => Object.assign({a:1,b:2,c:3}, ...opts.map((prop, index) =>
             prop && typeof prop === "object" && !Array.isArray(prop) 
             ? prop 
             : {[index]:prop})) 
           );

let opts = fn([2,3], ...[44, "a", {b:7}, {g:8, z: 9}, null, void 0]);

console.log(opts);

  • @spacepickle At which browser are you trying javascript at stacksnippets? – guest271314 May 1 '17 at 15:33
  • @spacepickle Try stacksnippets at chromium 57 launched with --javascript-harmony flag set. – guest271314 May 1 '17 at 15:40
-1

Though code at OP uses single default parameter, until we locate or develop a procedure for using only single parameter, we can utilize setting two default parameters to achieve expected result.

The first parameter defaults to a plain object, at second default parameter we pass parameter identifier from first parameter to Object.assign() following pattern at Question.

We reference second parameter identifier of function fn to get the default parameters when called without parameters; when called with first parameter having properties set to properties of object passed at first parameter and default parameters, the former overwriting the latter at the resulting object.

const fn = (__ = {}, opts = Object.assign({}, {a: 1, b: 2, c: 3}, __)) => 
             console.log(opts);

fn();

fn({b: 7});

fn({g: 9, x: 10});

  • I guess you do not need __(not sure though). You can directly use .assign({}, {...}, opts). Also, in my understanding, this is more of a hack and I'd prefer using code similar to the one in your question. I'd create a function parseInput and process input there and use returned value. – Rajesh Apr 18 '17 at 9:20
  • @Rajesh "I guess you do not need __(not sure though). You can directly use .assign({}, {...}, opts)" Can you create a jsfiddle or plnkr to demonstrate? – guest271314 Apr 18 '17 at 9:28
  • I was wrong. I tried and its not working. My bad. Also I would use something like this. Yes I understand its objective opinion, hence not answering – Rajesh Apr 18 '17 at 9:30
  • @Rajesh Yes, that is one option; posted a similar pattern at OP. The present Question inquires into using only default parameters to get expected result within function body. Note, the first parameter to assign() can be omitted Object.assign({a: 1, b: 2, c: 3}, __). There is a side-effect of passing a plain object at second parameter, Object {} is returned; passing an empty string at second parameter returns undefined. Would prefer to use single default parameter to avoid the bug in the pattern at Answer described above. Though Promise.resolve() expects single parameter as well. – guest271314 Apr 18 '17 at 9:40
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    Omitting first arg will make also override config object. In this case, since its an inline object, it will not cause issues but in real code, where you use variable instead of inline-object, it will cause issues. – Rajesh Apr 18 '17 at 9:43

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