Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am spinning my tires while beginning to build a jQuery plugin for Google Maps v3. I have read through: "A Plugin Development Pattern", Plugins/Authoring, and looked over a number of plugins for v2, but I am stuck on how to properly initialize the map, so that I can meet these three objectives:

  1. Only create a new Map if there isn't one in the selected element.
  2. Allow chaining on any existing Map.
  3. Have the methods callable on the object (e.g. $.gmap.method() instead of $.gmap('method')).

Apologies if this is poorly phrased, but basically I want a wrapper around the Map object, so that I can build out Google Maps with similar data much more quickly.

Here is what I've got so far:


(function ($) {
    $.fn.gmap = function(options) {
        var opts = $.extend({}, $.fn.gmap.defaults, options);

        return this.each(function(){
            $gmap = new google.maps.Map(this, opts);
            return $gmap;
        });
    };

    $.fn.gmap.go = function(){
        return this.setCenter(new google.maps.LatLng(10,10));
    };

    $.fn.gmap.defaults = {
        zoom: 2,
        center: new google.maps.LatLng(0,0),
        mapTypeId: google.maps.MapTypeId.TERRAIN
    };

})(jQuery);

$('map_canvas').gmap();

Sorry, I know it's not very far along, but basically if someone can just nudge me over the edge where a call to $('map_canvas').gmap().go() or $('map_canvas').gmap.go() tries to call Map.setCenter() and does not create a new instance, then I can work through the rest.

P.S. if anyone has already written a plugin like this, pointing that out would be even better.

P.S.S. I have already ordered jQuery Plugin Development Beginner's Guide, but I really would rather get started on this before it's delivered. Other suggested reading is more than welcome.

Thanks for any help.

share|improve this question
    
I started working on a plugin and hope to have something decently usable reasonably soon, but am more than happy for other to fork it: The kernel of it is here github.com/jnewman/jQuery-plugin-gmap-for-v3. Suggestions more than welcome. –  fncomp Jan 12 '11 at 4:37

1 Answer 1

up vote 0 down vote accepted

I finally figured this out. Essentially, the following does exactly what I was looking for:

(function($) {

var methods = {
    init : function( options ) {
        var output;
        this.each(function(){
            var $this = $(this),
            data = $this.data('gmap');

            var settings = {
                center: new google.maps.LatLng(0,0),
                zoom : 2,
                mapType: "terrain",
            };

            if ( ! data ) {
                if ( options ) { 
                    $.extend( settings, options );
                }
                $(this).data('gmap', new google.maps.Map(
                    $this.get(0), 
                    {
                        center: settings.center, 
                        zoom: settings.zoom,
                        mapTypeId: settings.mapType
                    })
                );  
            }
        });
        return this;
    }       
};

$.fn.gmap = function( method ) {

    this.go = function(lat,lng){
        $this = this;
        this.each(function(){
            $(this).data('gmap').setCenter(
                new google.maps.LatLng(lat,lng)
            );
        });
        return $this;
    }


    if ( methods[method] ) {
        return methods[method].apply( this, Array.prototype.slice.call( arguments, 1 ));
    } else if ( typeof method === 'object' || ! method ) {
        return methods.init.apply( this, arguments );
    } else {
        $.error( 'Method ' +  method + ' does not exist on jQuery.gmap' );
    } 

};})(jQuery);

I then use the methods like so:

Put map(s) onto the DOM: $('.map_containers').gmap().css({border: '1px solid orange'}); //css to demonstrate chaining.

Set a different center: $('.map_containers').gmap().go(50,50);

Hope this helps someone.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.