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How does this work?

The code:

a = {
    replacers: {
        YYYY: function () {
            return this.getFullYear();
        },
        dd: function () {
            var me = this,
                day = me.getDate();

            return (day < 10 ? '0' : '') + day;
        },
        d: function () {
            var me = this;

            return me.getDate();
        }
    },
    format: function (date, format) {
        var replacers = a.replacers;

        // I just added a plus to get multiple digits and it works...
        return format.replace(/\{([Yd]+)\}/g, function (str, p1) {
            var formatter = replacers[p1];
            if (formatter)
                return formatter.call(date);
        });
    }
};

document.write(a.format(new Date(), '{dd} {d} {YYYY} {d} {dd}'));

The result:

05 5 2013 5 05

Am I correct in using the + to identify 1 or more charater?

Are there any pitfalls here when I expand the replace functions? I'm mostly worried that there will be a match on {xx} before {xxx}.

share|improve this question
    
Not sure what you understood there, but + is a greedy quantifier while +? is lazy. And (x+)? is something else entirely. –  Joey Mar 5 '13 at 9:00
    
not being so super on regex i'm just worried that the match will go wrong. i just want to make sure that {xxx} is always handled before {xx} is always handled before {x}. if the current code does that... i'm good. –  Asken Mar 5 '13 at 9:08

1 Answer 1

up vote 0 down vote accepted

([d]+), or just (d+), will greedily match and capture one or more "d".

([d]+)?, or just (d*), will greedily match and capture zero or more "d".

For lazy matching the ? needs to be added immediately after the quantifier, i.e. d+?, but there is no need for it here as d+\} and d+?\} will always make exactly the same match, as for the } to be matched all the ds before it need to be matched.

Laziness is only relevant when there are options about which particular characters can be matched. For example, when matching the string "ddde", then d+. would match the whole string and d+?. would match just dd because the . can match the second d.

You say you want to "make sure that {xxx} is always handled before {xx} is always handled before {x}", but the one that is earlier in the string is the one that will be matched first regardless of whether the match is lazy or not. I don't see how it would matter here anyway - perhaps you could explain further why that would be a problem.

It is not clear from your code why you are using a replaces object when it seems simpler just to include its functionality within the callback to replace. And your choice of identifiers, replace and replaces involving the replace method call, and format as a function and one of its parameters, makes the code difficult to read.

share|improve this answer
    
it can't be (d+). there will be more coming like ([YMdhms]+). it must only be the same char repeating. i'll see if i can update the example with some more code when i've renamed some stuff and cleaned it up some. –  Asken Mar 5 '13 at 14:26
    
just got it. "earlier in the string is the one". I was thinking all wrong. –  Asken Mar 5 '13 at 14:44

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