0

This question already has an answer here:

I have an undefined variable and I check it in a string concat:

var undefinedVariable = undefined;
console.log("foo" + undefinedVariable === undefined ? "bar" : undefinedVariable.toString() );

Considering that undefinedVariable is undefined, undefinedVariable.toString() is an unreachable code. However, I get this error:

Uncaught TypeError: Cannot read property 'toString' of undefined(…)

The strange thing is if I remove "foo" at the start of console.log, then the code works fine.

console.log(undefinedVariable === undefined ? "bar" : undefinedVariable.toString() );

I have tested in chrome and firefox and I get the same result so probably it is not a bug. Is there any explanation why JS engines try to run the unreachable part?

marked as duplicate by Mike Cluck, AlBlue, Glorfindel, Louis javascript Jun 9 '16 at 14:28

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • ^ The title is poorly worded for that question but if you read the accepted answer, it will explain this behavior. – Mike Cluck Jun 7 '16 at 17:36
  • @MikeC Nopes... Not a dupe of that / Wrong dupe target. :) – Praveen Kumar Purushothaman Jun 7 '16 at 17:39
  • @PraveenKumar Like I said, it's not an exact dupe but the bug is the same. Ternary conditions are evaluated after concatenation which means that undefinedVariable.toString() is executed regardless of if undefinedVariable === undefined. – Mike Cluck Jun 7 '16 at 17:40
  • order of operations – epascarello Jun 7 '16 at 17:40
  • 1
    Possible duplicate of Concatenate string with ternary operator in javascript - the question is also being discussed on Meta. – Glorfindel Jun 9 '16 at 14:06
3

It is because of the Operator Precedence. The + (concatenation operator) has a greater precedence than the ?: (ternary operator). So, you need to enclose the ternary condition inside () because, it takes it along with the + (concatenation operator) and no more the left side is undefined. Use:

console.log("foo" + (undefinedVariable === undefined ? "bar" : undefinedVariable.toString()) );

You need to tell the JavaScript engine to evaluate the undefinedVariable separately and don't join both the "foo" and undefinedVariable and evaluate.

var undefinedVariable = undefined;
console.log("foo" + (undefinedVariable === undefined ? "bar" : undefinedVariable.toString()) );

The above gives me: foobar.

Output

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