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If I have a SWF and an XML file sitting in the same folder, is there a way to get the loader to use the location of the SWF as its starting point for loading the external file (as opposed to the HTML file upon which the SWF plays)? We are copying a group of web sites and some of the paths have unique page codes, but if the SWFs would just look in their own folder they would run fine. :)

Thank you! Chris

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1 Answer 1

up vote 1 down vote accepted

Could try this.

var base:String = unescape( LoaderInfo( this.root.loaderInfo ).url ); // url of SWF

// now we need to remove the SWF name from the url
var lastSlash:uint = Math.max( this.base.lastIndexOf( "\\" ), this.base.lastIndexOf( "/" ) );
return( base.substr( 0, lastSlash + 1 ) );

That will take the url of the SWF, loop through it and find the last "\" or "/" to determine where the swf file name starts, and set the base equal to the path of the SWF.

And then change all relative URLRequests from

var url:URLRequest = new URLRequest( "assets/blah/blah/img.png" );

to

var url:URLRequest = new URLRequest( base + "assets/blah/blah/img.png" );

This would be something I would add as a static property of your application class so that you are only accessing a string and not doing any casting or unicode escaping or anything repeatedly. Just run it once at start up and throw it as a static var because it will never change.

(I did test this and it works, at least locally. I see no reason why it would behave any differently with a URL from the web, however)

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2  
It would be more efficient to use lastIndexOf() instead of looping through all the characters (forward!). –  Amy Blankenship Apr 23 '13 at 0:10
    
Thank you Apocalyptic, I will let you know how it goes! –  Chris Ramsey Apr 23 '13 at 0:12
    
@AmyBlankenship I'd never even heard of lastIndexOf(). I'll update my answer to utilize it now. Thanks for pointing that one out. Just realized I should have looped backward, too. So thanks for pointing that one out. Very inefficient (though not a source of concern if only run once) –  Josh Janusch Apr 23 '13 at 0:13
    
Perfect solution. Thank you both of you! –  Chris Ramsey Apr 23 '13 at 2:11

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