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When I have something like this:

var str = "0123";
var i = 0;
str.replace(/(\d)/g,function(s){i++;return s;}('$1'));
alert(i);

Why does "i" equal 1 and not 4? Also, is it possible to pass the real value of $1 to a function (in this case 0,1,2,3) ?

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D'oh, the answer to the first part is because the inside function gets executed before the replace function gets the value. But I still don't know the answer to the second question. –  Kebabbi Jan 17 '11 at 12:04
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3 Answers 3

up vote 6 down vote accepted

When you use string.replace(rx,function) then the function is called with the following arguments:

  • The matched substring
  • Match1,2,3,4 etc (parenthesized substring matches)
  • The offset of the substring
  • The full string

You can read all about it here

In your case $1 equals Match1, so you can rewrite your code to the following and it should work as you desire:

var str = "0123";
var i = 0;
str.replace(/(\d)/g,function(s,m1){i++;return m1;});
alert(i);
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Thanks, I wasn't aware I could pass a function as the second parameter. –  Kebabbi Jan 17 '11 at 12:21
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The expression

function(s){i++;return s;}('$1')

Creates the function and immediately evaluates it, passing $1 as an argument. The str.replace method already receives a string as its second argument, not a function. I believe you want this:

str.replace(/(\d)/g,function(s){i++;return s;});
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You are calling the function, which increments i once, and then returns the string '$1'.

To pass the value to a function, you can do:

str.replace(/\d/g, function (s) { /* do something with s */ });

However, it looks like you don't actually want to replace anything... you just want a count of the number of digits. If so, then replace is the wrong tool. Try:

i = str.match(/\d/g).length;
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