just a quick question. I cannot find anything relating to this since I don't really see how to explain it... but, if I combine two bool values using an && to make another variable, what will happen?

var is_enabled = isEnabled() && isSupported();

If isEnabled() is false and isSupported() is true, will it equal false?

  • 3
    Did you try it? What did it output? – Rocket Hazmat Jul 18 '12 at 16:02
  • If your functions are really returning the boolean constants true or false, then yes. – Pointy Jul 18 '12 at 16:03
  • 4
    Q: If isEnabled() is false and isSupported() is true, will it equal false? A: You're kidding, right? Q: Did you try it? Q: Can you think of any possible reason it wouldn't be false??? – paulsm4 Jul 18 '12 at 16:03
  • I cannot try it as I am on mobile atm but this question came to mind. Basically my question was asking if I could combine the two functions with an && without error – Anonymous Jul 18 '12 at 16:08
  • possible duplicate of Logical operators in JavaScript — how do you use them? – user1106925 Jul 18 '12 at 16:15

11 Answers 11

up vote 21 down vote accepted

In Javascript the && and || operators are slightly strange. It depends on if the value is "falsy" (zero, undefined, null, empty string, NaN) or truthy (anything else, including empty arrays).

With && if the first value is "falsy", then the result of the operation will be the first value, otherwise it will be the second value. With || if the first value is "falsy" then the result of the operation will be the second value, otherwise it will be the first value.

Example:

var a = 5 && 3; // a will be 3
var a = 0 && 7; // a will be 0

var a = 1 || 2; // a will be 1
var a = 0 || 2; // a will be 2

This is very useful if you want to replace this:

if (x == null){
  x = 5;
}

With:

x = x || 5;

So in short, if isEnabled() is truthy then is_enabled will be set to whatever isSupported() returns. If isEnabled() is falsy, then is_enabled will be set to whatever that falsy value is.

Also as Robert pointed out, there is short-circuiting:

var x = 5 || infinite_loop();
var x = false && infinite_loop();

In both cases, the infinite_loop() call doesn't happen, since the two operations are short-circuited - || doesn't evaluate the second value when the first value is truthy, and && doesn't evaluate the second value when the first value is falsy.

  • But in all cases this kind of syntax is a bad practice correct ? because of code readability – Muhammad Saleh Oct 6 '15 at 8:51
  • I've never heard of it being called bad practice, and IMO it reads just fine. But then again I'm used to seeing this kind of thing. – robbrit Oct 9 '15 at 4:02

The result of false && true is false.

If isEnabled() is false and you use && then isSupported() will never be called because the evaulation will short circuit.

  • +1 for mentioning short-circuiting. – Rocket Hazmat Jul 18 '12 at 16:05

If any operand of && operator is falsy (false, 0, null, undefined, NaN, "") then is_enabled will be assigned the first falsy value.

If all operands of && operator is not falsy, then the last operand will be assigned to is_enabled.

yes:

<script type="text/javascript">
function isEnabled() {
    return false;
}

function isSupported() {
    return true;
}

var is_enabled = isEnabled() && isSupported();

alert(is_enabled);  // = 'false'
</script>

if both functions return only true or false, then it just works as a normal && with booleans.

1 && 1 = 1
1 && 0 = 0
0 && 1 = 0
0 && 0 = 0

First of all, && is only true if and only if both expressions are true.

So back to your question, true && false will equal to false, so yes.

You can also try to test these expressions yourself using the console function on firebug or chrome developer tools.

is_enabled would only be set to true if isEnabled and isSupported are both true. So if isEnabled is false, and isSupported is true, is_enabled would be false.

What you can do it's to just add a single & and apply an AND operation to those booleans, making it that if both of them are true, then is_enabled will be true.

var is_enabled = isEnabled() & isSupported();

EDIT Thanks to Pointy to pointing out that my syntax is incorrect, this should apply to C language, guess i just got confused

  • && is also an AND operation. & is a bitwise AND. – Rocket Hazmat Jul 18 '12 at 16:04
  • 1
    It should be noted that the semantics of & are significantly different from &&, particularly in that & always evaluates both expressions while && only evaluates the right-hand side when the left-hand side is true. – Pointy Jul 18 '12 at 16:04
  • 1
    Also (had to check the spec to make sure :-) the bitwise-logical operators always return an integer value, not boolean. – Pointy Jul 18 '12 at 16:07

Here you can see what are the possible cases of tests:

var str='My dummy string';
var str2='My other dummy string';
var falsy1= 1==2;
var truthy1= true;
var truthy2= true;
var falsy2= false;

then:

console.log('Both bool true:', truthy1 && truthy2); // <== Both bool true: true
console.log('Bool true and string:', truthy1 && str); // <== Bool true and string: My dummy string
console.log('String and bool true:', str && truthy1); // <== String and bool true: true
console.log('Falsy operation and string:', falsy1 && str); // <== Falsy operation and string: false
console.log('Bool false and string:', falsy2 && str); // <== Bool false and string: false
console.log('Both bool false and true:', falsy1 && truthy1); // <== Both bool false and true: false
console.log('Both bool true and false:', truthy1 && falsy1); // <== Both bool true and false: false
console.log('Operation false and bool true:', falsy2 && truthy1); // <== Operation false and bool true: false
console.log('Operation false and bool false:', falsy2 && falsy1); // <== Operation false and bool false: false
console.log('Both strings:', str2 && str); // <== Both strings: My dummy string
console.log('Both strings:', str && str2); // <== Both strings: My other dummy string   
console.log('String and bool false:',  str && falsy1); // <== String and bool false: false  
console.log('String and 2 bool false and true:',  str && falsy1  && truthy1); // <== String and 2 bool false and true: false
console.log('3 bool false and true and true:',  falsy1 && truthy1 && truthy2); // <== 3 bool false and true and true: false
console.log('3 bool false and false and true:',  falsy1 && falsy1 && truthy1); // <== 3 bool false and false and true: false
console.log('Bool false and operation false and bool true:',  falsy1 && falsy2 && truthy1); // <== Bool false and operation false and bool true: false
console.log('3 bool true and true and false:',  truthy2 && truthy1 && falsy1); // <== 3 bool true and true and false: false
console.log('String and 2 bool false and true:',  str && falsy1 && truthy1); // <== String and 2 bool false and true: false
console.log('String and 2 bool true and false:',  str && truthy1 && falsy1); // <== String and 2 bool true and false: false
console.log('2 bool false and true and string:',   falsy1 && truthy1 && str); // <== 2 bool false and true and string: false
console.log('2 bool true and false string:',  truthy1 && falsy1 && str); // <== 2 bool true and false string: false
console.log('Bool true and string and bool false:',  truthy1 && str && falsy1); // <== Bool true and string and bool false: false
console.log('Bool false and string and bool true:',  falsy1 && str && truthy1); // <== Bool false and string and bool true: false

And the bonus:

console.log('The existence of a string:',  !!str); // <== The existence of a string: true

The result of a successful Boolean operation such as "&&" is a Boolean value. As such, the result of isEnabled() && isSupported() will be a Boolean value which will then be assigned to is_enabled

  • 2
    That is not correct; in JavaScript, && does not necessarily produce a boolean result. – Pointy Jul 18 '12 at 16:08

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