6

Anyone can explain me, why local Regex variable and non local Regex variable have different output.

var regex1 = /a|b/g;
function isAB1() {
    return regex1.test('a');
}
console.log(isAB1()); // true
console.log(isAB1()); // false
console.log(isAB1()); // true
console.log(isAB1()); // false


function isAB2() {
    var regex2 = /a|b/g;
    return regex2.test('a');
}
console.log(isAB2()); // true
console.log(isAB2()); // true
console.log(isAB2()); // true
console.log(isAB2()); // true

I have created a JSFiddle for the same here.

  • 1
    from the doc : called multiple times on the same global regular expression instance will advance past the previous match. – Hacketo Jun 17 '15 at 9:32
6

You gave your regex the g flag which means it will globally match results. By doing so you explicitly asked your regex to keep state about its previous matches.

var regex1 = /a|b/g;

> regex1.lastIndex
0
> regex1.test('a');
true
> regex1.lastIndex
1
> regex1.test('a');
false

If you remove the g you will get the results you were expecting.

You can check your expressions .lastIndex property for when it is done matching.

  • Yes, you're right. Local regex2 is reinitialized every launch of isAB2, so isAB2 always returns true – Victor Perov Jun 17 '15 at 9:33
  • Correct, it is a different regex each time. – Benjamin Gruenbaum Jun 17 '15 at 9:34

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