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I am debugging some JavaScript, and can't explain what this || does?

function (title, msg) {
  var title = title || 'Error';
  var msg   = msg || 'Error on Request';
}

Can someone give me an hint, why this guy is using var title = title || 'ERROR'? I sometimes see it without a var declaration as well.

share|improve this question
27  
People have already answered this... but be extremely aware of the fact that the second value is chosen if the first value is falsy, not JUST undefined. The amount of times I've seen doWeDoIt = doWeDoIt || true, is enough to make me cry. (i.e doWeDoIt will now never be false) – Matt May 10 '10 at 11:14
    
1  
For those with experience with C#, the double-pipe operator is equivalent to null-coalesce operator ??. Javascript evaluates non-null objects like true (or better evalualtes null objects to false) – usr-local-ΕΨΗΕΛΩΝ Aug 27 '15 at 13:32
    
It just a simple way to assign a default value in one line. like when you assign a conditional value like this: int y = x > 2 ? x : 1 or Object o = person ?: new Person(). – MansApps Jan 14 at 15:52
    
WARNING: the top answers are not accurate and don't explain why this construct shouldn't be used. See this answer for broader explanation. – Gothdo May 15 at 12:38

11 Answers 11

up vote 108 down vote accepted

It means the title argument is optional. So if you call the method with no arguments it will use a default value of "Error".

It's shorthand for writing:

if (!title) {
  title = "Error";
}

This kind of shorthand trick with boolean expressions is common in Perl too. With the expression:

a OR b

it evaluates to true if either a or b is true. So if a is true you don't need to check b at all. This is called short-circuit boolean evaluation so:

var title = title || "Error";

basically checks if title evaluates to false. If it does, it "returns" "Error", otherwise it returns title.

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If title is not set, use 'ERROR' as default value.

More generic:

var foobar = foo || default;

Reads: Set foobar to foo or default. You could even chain this up many times:

var foobar = foo || bar || something || 42;
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up vote 15 down vote
+500

What is double pipe operator (||)?

Double pipe operator (||) is logical OR operator . In most languages it works the following way:

  • If the first value is false, it checks the second value. If it's true, it returns true and if it's false, it returns false.
  • If the first value is true, it always returns true, no matter what the second value is.

So it's basically (note that it's actually a pseudo-code, because you have to either give this function a name or wrap it in ( and ) to make it work):

function(x, y) {
  if (x) {
    return true;
  } else if (y) {
    return true;
  } else {
    return false;
  }
}

If you still don't understand, look at this table:

      | true   false  
------+---------------
true  | true   true   
false | true   false  

In other words, it's only false when both values are false.

How is it different in JavaScript?

JavaScript is a bit different, because it's loosely typed language. In this case it means that you can use || operator with values that are not booleans. Though it makes no sense, you can use this operator with for example a function and an object:

(function(){}) || {}

What happens there?

If values are not boolean, JavaScript makes implicit conversation to boolean. It means that if the value is falsey (e.g. 0, "", null, undefined (see also All falsey values in JavaScript)), it will be treated as false; otherwise it's treated as true.

So the above example should give true, because empty function is truthy. Well, it doesn't. It returns the empty function. That's because JavaScript's || operator doesn't work as I wrote at the beginning. It works the following way:

  • If the first value is falsey, it returns the second value.
  • If the first value is truthy, it returns the first value.

Surprised? Actually, it's "compatible" with the traditional || operator. It could be written as following function:

function(x, y) {
  if (x) {
    return x;
  } else {
    return y;
  }
}

If you pass a truthy value as x, it returns x, that is, a truthy value. So if you use it later in if clause:

(function(x, y) {
  var eitherXorY = x || y;
  if (eitherXorY) {
    console.log("Either x or y is truthy.");
  } else {
    console.log("Neither x nor y is truthy");
  }
}(true/*, undefined*/))

you get "Either x or y is truthy.".

If x was falsey, eitherXorY would be y. In this case you would get the "Either x or y is truthy." if y was truthy; otherwise you'd get "Neither x nor y is truthy".

The actual question

Now, when you know how || operator works, you can probably make out by yourself what does x = x || y mean. If x is truthy, x is assigned to x, so actually nothing happens; otherwise y is assigned to x. It is commonly used to define default parameters to function, because default function parameters were introduces in ES6 and still (as for January 10 '16) very few browsers support it. However, it is often considered as a bad programming practice, because it prevents you from passing a falsey value (which is not necessarily undefined or null) as a parameter. Consider following example:

function badFunction(/* boolean */flagA) {
  flagA = flagA || true;
  console.log("flagA is set to " + (flagA ? "true" : "false"));
}

It looks valid at the first sight. However, what would happen if you passed false as flagA parameter (since it's boolean, i.e. can be true or false)? It would become true. In this example, there is no way to set flagA to false.

Better example would be to explicitly check whether the flagA is undefined, like that:

function goodFunction(/* boolean */flagA) {
  flagA = typeof flagA !== "undefined" ? flagA : true;
  console.log("flagA is set to " + (flagA ? "true" : "false"));
}

Though it's longer, it always works and it's easier to understand (which OP has proven by asking this question).

See also

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Explaining this a little more...

The || operator is the logical-or operator. The result is true if the first part is true and it is true if the second part is true and it is true if both parts are true. For clarity, here it is in a table:

 X | Y | X || Y 
---+---+--------
 F | F |   F    
---+---+--------
 F | T |   T    
---+---+--------
 T | F |   T    
---+---+--------
 T | T |   T    
---+---+--------

Now notice something here? If X is true, the result is always true. So if we know that X is true we don't have to check Y at all. Many languages thus implement "short circuit" evaluators for logical-or (and logical-and coming from the other direction). They check the first element and if that's true they don't bother checking the second at all. The result (in logical terms) is the same, but in terms of execution there's potentially a huge difference if the second element is expensive to calculate.

So what does this have to do with your example?

var title   = title || 'Error';

Let's look at that. The title element is passed in to your function. In JavaScript if you don't pass in a parameter, it defaults to a null value. Also in JavaScript if your variable is a null value it is considered to be false by the logical operators. So if this function is called with a title given, it is a non-false value and thus assigned to the local variable. If, however, it is not given a value, it is a null value and thus false. The logical-or operator then evaluates the second expression and returns 'Error' instead. So now the local variable is given the value 'Error'.

This works because of the implementation of logical expressions in JavaScript. It doesn't return a proper boolean value (true or false) but instead returns the value it was given under some rules as to what's considered equivalent to true and what's considered equivalent to false. Look up your JavaScript reference to learn what JavaScript considers to be true or false in boolean contexts.

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Double pipe stands for logical "OR". This is not really the case when the "parameter not set", since strictly in the javascript if you have code like this:

function foo(par) {
}

Then calls

foo()
foo("")
foo(null)
foo(undefined)
foo(0)

are not equivalent.

Double pipe (||) will cast the first argument to boolean and if resulting boolean is true - do the assignment otherwise it will assign the right part.

This matters if you check for unset parameter.

Let's say, we have a function setSalary that has one optional parameter. If user does not supply the parameter then the default value of 10 should be used.

if you do the check like this:

function setSalary(dollars) {
    salary = dollars || 10
}

This will give unexpected result on call like

setSalary(0) 

It will still set the 10 following the flow described above.

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Basically it checks if the value before the || evaluates to true, if yes, it takes this value, if not, it takes the value after the ||.

Values for which it will take the value after the || (as far as i remember):

  • undefined
  • false
  • 0
  • '' (Null or Null string)
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1  
false || null || undefined || 0 || '' || 'you forgot null' – Dziamid May 16 '13 at 15:02

double pipe operator

is this example usefull?

var section = document.getElementById('special');
if(!section){
     section = document.getElementById('main');
}

can also be

var section = document.getElementById('special') || document.getElementById('main');
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To add some explanation to all said before me, I should give you some examples to understand logical concepts.

var name = false || "Mohsen"; # name equals to Mohsen
var family = true || "Alizadeh" # family equals to true

It means if the left side evaluated as a true statement it will be finished and the left side will be returned and assigned to the variable. in other cases the right side will be returned and assigned.

And operator have the opposite structure like below.

var name = false && "Mohsen" # name equals to false
var family = true && "Alizadeh" # family equals to Alizadeh
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Whilst Cletus' answer is correct, I feel more detail should be added in regards to "evaluates to false" in JavaScript.

var title = title || 'Error';
var msg   = msg || 'Error on Request';

Is not just checking if title/msg has been provided, but also if either of them are falsy. i.e. one of the following:

  • false.
  • 0 (zero)
  • "" (empty string)
  • null.
  • undefined.
  • NaN (a special Number value meaning Not-a-Number!)

So in the line

var title = title || 'Error';

If title is truthy (i.e., not falsy, so title = "titleMessage" etc.) then the Boolean OR (||) operator has found one 'true' value, which means it evaluates to true, so it short-circuits and returns the true value (title).

If title is falsy (i.e. one of the list above), then the Boolean OR (||) operator has found a 'false' value, and now needs to evaluate the other part of the operator, 'Error', which evaluates to true, and is hence returned.

It would also seem (after some quick firebug console experimentation) if both sides of the operator evaluate to false, it returns the second 'falsy' operator.

i.e.

return ("" || undefined)

returns undefined, this is probably to allow you to use the behavior asked about in this question when trying to default title/message to "". i.e. after running

var foo = undefined
foo = foo || ""

foo would be set to ""

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Quote: "What does the construct x = x || y mean?"

Assigning a default value.

This means providing a default value of y to x, in case x is still waiting for its value but hasn't received it yet or was deliberately omitted in order to fall back to a default.

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That's the exact meaning of the construct and the only meaning of it. And it was vastly as a subroutine in writing functions that could be fetched as prototypes, standalone functions, and also as borrowed methods to be applied on another element. Where its main and only duty was to modify the reference of the target. Example: function getKeys(x) { x = x || this ; .... } which could be used without modification as a standalone function, as a property method in prototypes and as a method of an element which can get another element as its argument as ` [element].getKeys(anotherElement);` – Bekim Bacaj May 18 at 2:34

And I have to add one more thing: This bit of shorthand is an abomination. It misuses an accidental interpreter optimization (not bothering with the second operation if the first is truthy) to control an assignment. That use has nothing to do with the purpose of the operator. I do not believe it should ever be used.

I prefer the ternary operator for initialization, eg,

var title = title?title:'Error';

This uses a one-line conditional operation for its correct purpose. It still plays unsightly games with truthiness but, that's Javascript for you.

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