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I defined my plugin base on http://docs.jquery.com/Plugins/Authoring

(function( $ ){

  var methods = {
    init : function( options ) {  },
    show : function( options ) {  },
    hide : function( ) {  },
    update : function( content ) { 
      // How to call the show method inside the update method
      // I tried these but it does not work
      // Error: not a function
      this.show(); 
      var arguments = { param: param };
      var method = 'show';
      // Error: options is undefined
      methods[ method ].apply( this, Array.prototype.slice.call( arguments, 1 ));  
    }
  };

  $.fn.tooltip = function( method ) {

    // Method calling logic
    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.tooltip' );
    }    

  };

})( jQuery );

How to call the show method inside the update method?

EDIT:

The show method references this. Using methods.show(options) or methods['show'](Array.prototype.slice.call( arguments, 1 )); works to call the show method but then the reference to this seems to be wrong because I got a this.find(...) is not a function error.

The show method:

show: function(options) {
    alert("Options: " + options);
    alert("Options Type: " + options.interactionType);
    var typeCapitalized = capitalize(options.interactionType);
    var errorList = this.find('#report' + typeCapitalized);
    errorList.html('');
},
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2 Answers 2

up vote 12 down vote accepted
var methods = {
  init : function( options ) {  },
  show : function( options ) {  },
  hide : function( ) {  },
  update : function( options ) { 

    methods.show.call(this, options);

  }
};
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methods.show() works but not $(this).show() –  Sydney Apr 14 '11 at 13:58
    
Ok, I wasn't so sure about $(this).show();. –  Matt Ball Apr 14 '11 at 13:59
    
I edited the question because now I have a problem inside the show method due to a reference to this –  Sydney Apr 14 '11 at 14:21
    
See my edit - it's a guess, but I think it's right. –  Matt Ball Apr 14 '11 at 14:26
    
Second argument of apply must be an array. So I tried methods.show.apply(this, Array.prototype.slice.call( arguments, 1 ) ); with var arguments = { interactionType: 'Request' }; but now options in the show method is undefined. –  Sydney Apr 14 '11 at 14:35

Your use of .apply is what's throwing everything off here. You're deliberately changing what this means, which is what makes this.show() not work. If you want this to continue to be methods (which makes sense), you can do simply:

  return methods[ method ](Array.prototype.slice.call( arguments, 1 ));
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