Friday, 28 July 2017

javascript - Can (a== 1 && a ==2 && a==3) ever evaluate to true?






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Is it ever possible that (a== 1 && a ==2 && a==3) could evaluate to true in JavaScript?




This is an interview question asked by a major tech company. It happened two weeks back, but I'm still trying to find the answer. I know we never write such code in our day-to-day job, but I'm curious.


Answer



If you take advantage of how == works, you could simply create an object with a custom toString (or valueOf) function that changes what it returns each time it is used such that it satisfies all three conditions.





const a = {
i: 1,
toString: function () {
return a.i++;

}
}

if(a == 1 && a == 2 && a == 3) {
console.log('Hello World!');
}









The reason this works is due to the use of the loose equality operator. When using loose equality, if one of the operands is of a different type than the other, the engine will attempt to convert one to the other. In the case of an object on the left and a number on the right, it will attempt to convert the object to a number by first calling valueOf if it is callable, and failing that, it will call toString. I used toString in this case simply because it's what came to mind, valueOf would make more sense. If I instead returned a string from toString, the engine would have then attempted to convert the string to a number giving us the same end result, though with a slightly longer path.


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