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I have the next function:

var decode = function(str, result) {
    var regex = /\d+/,
        number = regex.exec(str);

    if (number === null) {
        return str;
    }

    var start =  number.index,
        end = number[0].length + start - 1,
        str = str.replace(/\d+/, ""),
        repeat = str.charAt(start);

    result += str.substring(0, start);
    for (var i = 0; i < number[0] - 1; i++) {
        result += repeat;
    }
    result += str.substring(start, str.length);
    number = regex.exec(result);

    if (number === null) {
        return result;
    } else {
        return decode(result, "");
    }
};

var str = "bob2b11a";
console.log(decode(str, ""));
// "bobbbaaaaaaaaaaa"

So It replaces the numbers with the character that appears next to them ('number' times). There is a more elegant or shorter way to do this?

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1  
There is a more elegant or shorter way to do this? Yes there is. –  epascarello Nov 20 '12 at 19:50
7  
Maybe better suited for codereview.stackexchange.com ? –  Tomasz Nurkiewicz Nov 20 '12 at 19:50
    
And all that can be done in one replace() statement, no recursion needed. –  epascarello Nov 20 '12 at 19:59
    
Thanks @TomaszNurkiewicz I didn't know it. But I can delete the post (the delete link generate a pops up message 'Vote to delete this post?') –  enrmarc Nov 20 '12 at 20:01
    
@enrmarc - Already solved it for ya. –  tjameson Nov 20 '12 at 20:01
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closed as off topic by JasCav, H2CO3, sachleen, epascarello, Tomasz Nurkiewicz Nov 20 '12 at 20:01

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1 Answer

up vote 1 down vote accepted

How about something like this:

function decode(str) {
    return str.replace(/(\d+)([a-zA-A])/g, function (match, num, let) {
        var ret = '', i;
        for (i = 0; i < parseInt(num, 10); i++) {
            ret += let;
        }
        return ret;
    });
}

There' still some optimization you can do in terms of speed, but this is much simpler than your original.

share|improve this answer
    
There is still a better way. no for loop needed. –  epascarello Nov 20 '12 at 20:02
    
@epascarello - True, but this is much simpler than his version... –  tjameson Nov 20 '12 at 20:03
    
@epascarello Could you post your answer? –  enrmarc Nov 20 '12 at 20:03
    
Post a question on code review and I will. :) –  epascarello Nov 20 '12 at 20:05
    
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