Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

This Javascript expression is working just fine in all browsers (jsfiddle):

false ? 1 : x = 2;

It's evaluating to 2.

But why? I'd expect an exception here, because the left hand side of the assignment is false ? 1 : x, which is not a valid reference. Compare with (jsfiddle):

(false ? 1 : x) = 2;

This one is throwing a ReferenceError. I double checked the Javascript operator precedence table, it states that the conditional operator ? : has higher precedence than the assignment operator =, so both expressions should be identical, at least I though so.

In Java, which has pretty similar syntax and operator precedence rules like Javascript, both expressions above result in a compile time error, which makes perfectly sense.

Can someone explain this difference?

share|improve this question
3  
Notice, that conditional operator returns values, not references. – Teemu Jun 1 '13 at 12:12
2  
@Teemu - where the value may actually be a reference. E.g., (false?func1:func2)(); – nnnnnn Jun 1 '13 at 12:20
    
@nnnnnn You're right with this, though OP has only a variable in the example. Actually you've mentioned this also in your answer, just bad reading for me... – Teemu Jun 1 '13 at 12:56
up vote 9 down vote accepted
+50

Here are the two keys to understanding the difference between the JavaScript conditional expression and the Java conditional expression:

Please read the Note at the bottom of this section of the ECMAScript 5 annotated specification:

http://es5.github.io/#x11.12

Now, please read the Java specification section for the conditional expression:

http://docs.oracle.com/javase/specs/jls/se7/html/jls-15.html#jls-15.25

You will note that as the ECMAScript 5 note states, the third operand in the ternary operator in Java cannot be just any old expression - it can only be a ConditionalExpression. However, for ECMAScript 5, the third operand can be any AssignmentExpression.

Looking further at the Java spec, we see that Expression is any assignment expression:

http://docs.oracle.com/javase/specs/jls/se7/html/jls-15.html#jls-15.27

But ConditionalExpression is either the ConditionalExpression with the ternary operator (... ? ... : ...) or just a ConditionalOrExpression (termed LogicalOrExpression in ES5) (see either of the first two links above for that info). The "chain" of what the ConditionalOrExpression can be starts here in Java:

http://docs.oracle.com/javase/specs/jls/se7/html/jls-15.html#jls-15.24

And here in ECMAScript 5:

http://es5.github.io/#x11.11

Following the "chain" of expression types backward in the ECMAScript 5 spec (because it is easier to follow than the Java spec) from ConditionalExpression all the way through basically every other expression but Assignment Expression finally lands us at the beginning - Primary Expression:

http://es5.github.io/#x11.1

The second operand in both of your code snippets above is a primary expression:

1

The upshot of all this rigamarole (if I am correct) is that in Java, the third operand of the ternary operator cannot be an assignment, but in JavaScript it can. That is why both of your examples fail in Java but only the second in JavaScript.

Why does the first one work in JavaScript but not the second?

operand1 ? operand2 : operand3;

works like the following IIFE code (not actually, but the below code is illustrative of how the above works):

(function () { if (operand0) return operand1; else return operand2;}());

So:

false ? 1 : x = 2;

becomes (again, not actually - the below code is illustrative of the above code):

(function () { if (false) return 1; else return x = 2;}());

However, in your second snippet, when using the parens, you separate out explicitly the conditional expression from the ' = 2;':

(false ? 1 : x) = 2;

becomes (again, not actually - the below code is illustrative of the above code):

(function () { if (false) return 1; else return x;}()) = 2;

The "acts like the example IIFE function invocation" behavior of the ternary operator will return whatever x is and that will be a value, not a reference, which cannot be assigned to. Hence the error. This would be like the following code (if x === 3):

3 = 2;

Obviously, one cannot do this.

In Java, I believe, the first one gives an error because the third operator cannot be an assignment, the second one gives an error because you cannot assign to a value (just like in JavaScript).

As far as operator precedence, please look at the following code:

var x = 3;

console.log(false ? 1 : x);          // ?: evaluates to "3"
console.log(false ? 1 : x = 2);      // ?: evaluates to "2"
console.log(false ? 1 : x = 2, 4);   // ?: evaluates to "2" - "2" and "4" arguments passed to log
console.log((false ? 1 : x = 2, 4)); // ?: evaluates to "4"

The first two are easily understood when viewed in terms of the IIFE illustrative code above.

In the first line x is evaluated and the conditional expression evaluates to 3 - that's easy.

In the second line, the best way I can describe it is that the conditional operator (?:) causes even the lower precedence '=' operator to be evaluated as a complete expression not because (?:) has higher precedence, but because as the spec states the assignment expression following the ':' is evaluated (including the ' = 2' part) as an AssignmentExpression. This behavior looks clearer in the return statement in the IIFE examples above. With JavaScript at least, you can have an assignment not only in the second operand but also the third of the conditional expression.

However, in the third line, a complete assignment expression is already found in the "x = 2" expression and the ternary operator uses it as the complete third operand, and the ',' operator being lower in precedence than any other, we get the equivalent to the following code:

console.log((false ? 1 : x = 2), 4);

In the fourth line of code, encapsulating the entire expression within the console.log() statement in parens brings the ', 4' into the '?:' ternary expression as part of the third operand.

The following jsfiddles demonstrate the above discussion with live code. Note that the first two have the same exact error after printing '2' twice:

FIDDLE1

FIDDLE2

FIDDLE3

share|improve this answer
2  
One may argue that those functions, while actually behaving like expressions, are different in the semantics, but that's not the point. A lot of important implications here are only vaguely mentioned. So it took me a while to look up the grammar rules of Java and Javascript to understand how the expressions are parsed. I realize that's not as simple as operator precedence tables may suggest. This makes sense, I wasn't quite right saying that the syntax is similar. This is a good answer. – GOTO 0 Oct 9 '13 at 17:23
    
Semantic differences noted. Good point. Perhaps the terms "help understand" or "analogous to" would work better? I could not come up with a better way to help demonstrate what was going on in live code, so the IIFEs seem valuable in moving the discussion along as well as demonstrating at least as analogs in a jsFiddle. – aeoril Oct 9 '13 at 17:32
    
@GOTO0 - I updated my answer to get rid of the word "semantically" when referring to my IIFE analogs, instead using the term "illustrative of" – aeoril Oct 9 '13 at 18:37

As you found at MDN, ? : has a higher precendence than the assignment operator =, which means that JS is reading your statement as:

false ? 1 : (x = 2);

At first glance that might seem backwards, but what it means is that ? : is expecting three operands, with the part on the right of the : being the third operand. Since = has lower precedence x = 2 becomes the third operand.

The alert shows 2 because the assignment x = 2 sets the x variable to 2 and then this (sub)expression evaluates to 2.

Your second version:

(false ? 1 : x) = 2;

...gives a reference error because it does the (false ? 1 : x) part first which evaluates to the value associated with x (undefined), it doesn't return the variable x itself. undefined = 2 doesn't work.

share|improve this answer
1  
Sorry, I don't understand the first sentence of your answer. I though operators with higher precedence would be evaluated first, not last. Why is this different here? – GOTO 0 Jun 1 '13 at 11:57
1  
The ?: part is processed first in that sense that in order for it to be evaluated at all it must have three operands, so the interpreter has to figure out what the operands are and in this case the third operand is the expression x = 2. That's what I tried to say in my second paragraph above. Note that if you say true ? 1 : x = 2 the x = 2 part doesn't get evaluated at all and x retains its previous value. – nnnnnn Oct 8 '13 at 10:50

The ternary operator (?) needs three values: A condition, an if-true and an if-false.

In the expression

false ? 1 : x = 2

the compiler sees false as the condition, 1 as the if-true and x=2. Since ? takes priority over = the x=2 has not yet been evaluated. So since false is by nature false the x=2 is what is returned.

When evaluated x=2 returns 2.

Hence why you can write

x = y = 2

In this example x and y are both set to 2.

The reason the whole x=2 is seen as the if-false operand and not just the x is because the ternary operator takes everything to the right of the : as the if-false if it is within scope.

When you use the brackets however what you are trying to do is set a literal (whatever x is) to 2, resulting in an error.

I can't answer the question of why in javascript it works whereas it results in an error in java however. I can only assume slightly different operator priorities?

share|improve this answer

I wouldn´t code this way, but the fact it´s working is obvious to me:

Starting of with your statement ?: has higher precedence than = - thats´s wrong since ?: has 15 while the = has 17.
Therefore first code is similar to false ? 1 : (x = 2); - from there on its pretty clear whats happening in my opinion, thats similar to if (false) 1; else x=2;

Your second code snippet cannot work because the left-hand side of the = is undefined and you cant assign anything to undefined, like the ReferenceError denotes.

share|improve this answer
1  
?: does have higher precedence than =. 15 is higher precedence than 17, as per the explanation at the top of the table the OP linked to. – nnnnnn Jun 1 '13 at 11:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.