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I'm working on a gallery that pulls up a full image inside a tooltip when hovering over thumbnails. The problem is, these full images commonly go outside the viewfinder. To remedy this, I'm moving the tooltip if the image will go outside the window boundaries, which requires immediately knowing the images dimensions (to avoid the tooltip jumping around). However, the images take a bit to load (.gifs) so I can't wait on DOM in order to get the dimensions. So, I'm calling a PHP script to return the the image dimensions before they load.

The problem I'm having is that there's no response from my $.get call. I know the PHP script is working fine, but I'm not getting any data back from it through jquery. Any help would be greatly appreciated. Thanks!!

hover.js:

this.imagePreview = function(){

    $("a.preview").hover(function(e){
            var viewHeight = $(window).height() + $(window).scrollTop();
            var viewWidth = $(window).width();
            var xOffset=e.pageX+40;
            var yOffset=e.pageY+40;
            var url = 'http://mysite.com/i/' + this.href.slice(20);
            var w = 0;
            var h = 0;

            $("body").append("<div id='preview'><img src=" + url +" id='img'/></div>");

            $.get("getDimensions.php/?img=" + url, function(data){
                w = data.w;
                h = data.h;
                $("body").append("INFO ABOUT IMAGE DIMENSIONS TRIGGERED: " + w + h);
            });

            $("#preview")
                .css("top",yOffset + "px")
                .css("left",xOffset + "px")
                .fadeIn("fast");

            $('#img').load(function() {
                if((e.pageX+img.width)>viewWidth) {  xOffset=e.pageX-img.width-70; }
                if((e.pageY+img.height)>viewHeight) { yOffset=e.pageY-img.height-70; }
                $("#preview")
                    .css("top",yOffset + "px")
                    .css("left",xOffset + "px")
                    .fadeIn("fast");
            });

        },
        function(){
            $("#preview").remove();
        });

};

// starting the script on page load
$(document).ready(function(){
    imagePreview();
});

getDimensions.php:

<?php
list($width, $height, $type, $attr) = getimagesize($img);
echo json_encode(array("w"=>$width,"h"=>$height));
?> 
share|improve this question
    
Have you tried $.getJSON ? –  yoda Aug 26 '11 at 1:34
    
Yep, that didn't seem to work either. –  Cody Bonney Aug 26 '11 at 2:17
1  
Maybe ur problem is getDimensions.php**/**?img here. –  zhzhzhh Aug 26 '11 at 2:36

4 Answers 4

$("body").append("<div id='preview'><img src=" + url +" id='img'/></div>");

when u append the img which have src prop,that will not fire load event any more.That's the problem is.

share|improve this answer

Have you tried..

var rand = Math.floor(Math.random()*11);

$.get("getDimensions.php/?img=" + url + "&r=" + rand, function(data){
            w = data.w;
            h = data.h;
            $("body").append("INFO ABOUT IMAGE DIMENSIONS TRIGGERED: " + w + h);
        },"json");

( Also, I would strongly recommend .ajax over .get)

Can you view what you are getting back from getDimensions.php (in firebug)?

share|improve this answer

My guess is that jQuery has no way of knowing that the data returned from getDimensions.php is JSON (as opposed to plain old text), and it isn’t trying to parse it.

What's the value of data (if you print it out to the console)?

If this is the problem, you can solve it by adding this line to the PHP script, before echo:

header('Content-Type: application/json');
share|improve this answer
    
Tried that out but it still doesn't seem to be working. Thanks for taking the time to try and help me out! –  Cody Bonney Aug 26 '11 at 1:45
    
@Cody: What's in data? –  Sidnicious Aug 26 '11 at 1:55
    
{"w":548,"h":150} Is what it outputs for one image. –  Cody Bonney Aug 26 '11 at 2:21
    
That ain't necessary, javascript can understand plain text as json string just fine. –  yoda Aug 26 '11 at 2:37
1  
@yoda that's not correct, or I'm missing something. Here's a JSFiddle. –  Sidnicious Aug 26 '11 at 16:21

Try $.parseJSON():

        $.get("getDimensions.php/?img=" + url, function(data){
            var jdata = $.parseJSON(data);
            w = jdata.w;
            h = jdata.h;
            $("body").append("INFO ABOUT IMAGE DIMENSIONS TRIGGERED: " + w + h);
        });

and make sure your php works (shouldn't it be $_GET['img'] instead of $img?).

UPDATE

As stated by yoda, you shouldn't need to parse the object printed by php, since it is a javascript object. Nonetheless, to make javascript recognize it as so, you have to put on the very first line of your php script the command:

header('Content-type: application/json');

Otherwise the php output is read as a string and you have to parse it as I stated before.

share|improve this answer
    
Thanks for the response. Tried using $.parseJSON(): but it doesn't seem to respond to that either. I tried testing the php file independently and it worked fine, swapping $img out with $_GET['img'] didn't seem to make a difference. –  Cody Bonney Aug 26 '11 at 2:15
    
There's no need to parse json, it's automatically parsed on the response. –  yoda Aug 26 '11 at 2:37

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