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In a fit of self-improvement, I'm reading (and rereading) TGP by Señor Crockford. I cannot, however, understand the middlemost part of his deentityify method.

...
return this.replace(...,
    function (a, b) {
       var r = ...
    }
);

I think I understand that:

  1. this.replace is passed two arguments, the regex as the search value and the function to generate the replacement value;
  2. the b is used to access the properties in the entity object;
  3. the return ? r : a; bit determines whether to return the text as is or the value of the appropriate property in entity.

What I don't get at all is how the a & b are provided as arguments into function (a, b). What is calling this function? (I know the whole thing is self-executing, but that doesn't really clear it up for me. I guess I'm asking how is this function being called?)

If someone was interested in giving a blow by blow analysis akin to this, I'd really appreciate it, and I suspect others might too.

Here's the code for convenience:

String.method('deentityify', function ( ) {
    var entity = {
        quot: '"',
        lt: '<',
        gt: '>'
    };

    return function () {
        return this.replace(
            /&([^&;]+);/g,
            function (a, b) {
                var r = entity[b];
                return typeof r === 'string' ? r : a;
            }
        );
    };
}()); 
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The nutshell version: replace() itself calls the function passed to it. Consider it a "callback" function, a very typical pattern. –  Dave Newton May 13 '12 at 10:54
    
@DaveNewton Yep, I can see this now. What I don't get is why b is used to check whether the matched text is a property in entity, but a is returned if r !== 'string' (i.e., entity[b] is not found, I think). I would have expected (1) check if b is a property in entity, (2a) if so, substitute the value of b (i.e., r) or else (2b) stick b back into the string. If a is the numerical offset, why is it returned as the replacement value? –  Nick May 13 '12 at 10:59
    
Don't have the book in front of me, so can't help you there. –  Dave Newton May 13 '12 at 11:00
    
I updated the post with the code - a bit rude of me to expect someone else to :) –  Nick May 14 '12 at 11:41
    
See my "answer", which is more of a comment. phihag slightly misspoke, neither a nor b are numerical offsets. –  Dave Newton May 14 '12 at 11:53
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2 Answers

up vote 3 down vote accepted

a isn't the numerical offset, it's the matched substring.

b (in this case) is the first grouping, i.e., the match minus the surrounding & and ;.

The method checks to make sure the entity exists, and that it's a string. If it is, that's the replacement value, otherwise it's replaced by the original value, minus the & and ;

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The replace function can take a function as the second parameter.

This function is then called for every match, with a signature that depends on the number of groups in the regular expression being searched for. If the regexp does not contain any capturing groups, a will be the matched substring, b the numerical offset in the whole string. For more details, refer to the MDN documentation.

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