2

I am trying to do arithmetics here. The reason why I do this is to prevent messy if else checks and d is null or undefined sometimes.

However the following code gives me something unexpected. Could anyone tell me what is happening? Thanks.

var t = 2;
var d = 2;
t + (d && 1 || 0) // logs 3
t + d && 1 || 0 // logs 1
  • What arithmetic are you doing here? What results do you expect? On line 3 and 4 you don't have any equals sign so r he result just goes nowhere. Can you be more specific of what you are trying to do, and what unexpected results you're getting? – Michael P Aug 22 '15 at 16:38
  • Check this link for JavaScript operator precedence. – Mytharael Aug 22 '15 at 17:16
  • ok thanks. ya turns out logical OR or AND precedence is so low. – Shih-Min Lee Aug 24 '15 at 1:40
8

Operator priority. If you do t + (d && 1 || 0) everything inside the brackets gets called before the addition from left to right. But if you do t + d && 1 || 0 the addition gets executed before those logical operators.

So in more detail, lets replace those variables with their numerical values:

  1. 2 + (2 && 1 || 0) becomes 2 + (1 || 0) becomes 2 + 1 becomes 3
  2. 2 + 2 && 1 || 0 becomes 4 && 1 || 0 becomes 1 || 0 becomes 1

Note: Any number besides zero becomes true when converted to boolean in JavaScript and true itself becomes 1 when converted back to a numerical representation. Thats why a && b will yield to b, whenever a is not zero

  • 2
    a && b returns b if a is truthy. So 4 && 1 || 0 becomes becomes 1 || 0, not true || 0 – sheilak Aug 22 '15 at 16:54
  • ok I guess I missed something here.. apparently + is calculated before the && on the right.. – Shih-Min Lee Aug 22 '15 at 17:02
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    @NaCl please edit your answer according to @sheilak's comment. The part about converting to and from true is incorrect. – Mytharael Aug 22 '15 at 17:08

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