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I have an image being created with gdimage, which has 40000 5x5 blocks linking to different user profiles and I want that when you hover over one of those blocks, AJAX will go and fetch that profile from the database by detecting the x and y co-ords when it is moved over the image.

Then when it is clicked, with the information it has obtained link to that users profile.

Here is what I have got so far:

Javascript/jQuery:

<script type="text/javascript">

    jQuery.fn.elementlocation = function() {

        var curleft = 0;
        var curtop = 0;

        var obj = this;

        do {

        curleft += obj.attr('offsetLeft');
        curtop += obj.attr('offsetTop');

        obj = obj.offsetParent();

        } while ( obj.attr('tagName') != 'BODY' );


            return ( {x:curleft, y:curtop} );

    };


    $(document).ready( function() {

        $("#gdimage").mousemove( function( eventObj ) {

            var location = $("#gdimage").elementlocation();
            var x = eventObj.pageX - location.x;
            var x_org = eventObj.pageX - location.x;
            var y = eventObj.pageY - location.y;
            var y_org = eventObj.pageY - location.y;

            x = x / 5;
            y = y / 5;

            x = (Math.floor( x ) + 1);
            y = (Math.floor( y ) + 1);

            if (y > 1) {

                block = (y * 200) - 200;
                block = block + x;

            } else {

                block = x;

            }

            $("#block").text( block );
            $("#x_coords").text( x );
            $("#y_coords").text( y );

                $.ajax({
                    type: "GET",
                    url: "fetch.php",
                    data: "x=" + x + "&y=" + y + "",
                    dataType: "json",
                    async: false,
                    success: function(data) {
                        $("#user_name_area").html(data.username);
                    }
                });

        });

    });

</script>

PHP:

<?

    require('connect.php');

    $mouse_x = $_GET['x'];
    $mouse_y = $_GET['y'];

    $grid_search = mysql_query("SELECT * FROM project WHERE project_x_cood = '$mouse_x' AND project_y_cood = '$mouse_y'") or die(mysql_error());

    $user_exists = mysql_num_rows($grid_search);

    if ($user_exists == 1) {

        $row_grid_search = mysql_fetch_array($grid_search);

        $user_id = $row_grid_search['project_user_id'];


        $get_user = mysql_query("SELECT * FROM users WHERE user_id = '$user_id'") or die(mysql_error());

        $row_get_user = mysql_fetch_array($get_user);

        $user_name = $row_get_user['user_name'];
        $user_online = $row_get_user['user_online'];

        $json['username'] = $user_name;
        echo json_encode($json);

    } else {

        $json['username'] = $blank;
        echo json_encode($json);

    }

?>

HTML

<div class="tip_trigger" style="cursor: pointer;">

    <img src="gd_image.php" width="1000" height="1000" id="gdimage" />

    <div id="hover" class="tip" style="text-align: left;">
        Block No. <span id="block"></span><br />
        X Co-ords: <span id="x_coords"></span><br />
        Y Co-ords: <span id="y_coords"></span><br />
        User: <span id="user_name_area">&nbsp;</span>
    </div>

</div>

Now, the 'block', 'x_coords' and 'y_coords' variables from the mousemove location works fine and shows in the span tags, but it's not getting the PHP variables from the AJAX function and I can't understand why.

I also don't know how to make it so when the mouse is clicked it takes the variables taken from fetch.php and directs the user to a page such as "/user/view/?id=VAR_ID_NUMBER"

Am I approaching this the wrong way, or doing it wrong? Can anyone help? :)

share|improve this question
2  
For the love of webservers, please don't perform network activity in an unthrottled mousemove callback! –  Jason LeBrun Jan 31 '11 at 18:54
    
Mouse-move AJAX calls can kill your server quick. Do you use the data, returned form the mousemove Ajax call or do you want to have it ready for mouse click ? Because, it's better to have only mouse click to fetch it's data and redirect. –  Radoslav Georgiev Jan 31 '11 at 18:55
    
Oh, ignore my last comment. I see that you're using one image div. –  Jason LeBrun Jan 31 '11 at 18:59
    
Can you post your code for fetch.php? Is it returning a validly formatted JSON result? –  Jason LeBrun Jan 31 '11 at 19:00
    
But please please please please, throttle the mousemove function. –  Jason LeBrun Jan 31 '11 at 19:00

2 Answers 2

up vote 3 down vote accepted

Please see the comments about not doing a fetch with every mousemove. Bad bad bad idea. Use some throttling.

That said, the problem is, you're not using the result in any way in the success function.

Your PHP function doesn't return anything to the browser. PHP variables do not magically become available to your client-side JavaScript. PHP simply runs, produces an HTML page as output, and sends it to the browser. The browser then parses the information that was sent to it as appropriate.

You need to modify your fetch.php to produce some properly formatted JSON string with the data you need. It would look something like { userid: 2837 }. For example, try:

echo "{ userid: $user_id, username: $user_name }";

In your success callback, the first argument jQuery will pass to that function will be the result of parsing the (hopefully properly formatted) JSON result so that it becomes a proper JavaScript object. Then, in the success callback, you can use the result, in a way such as:

//data will contain a JavaScript object that was generate from the JSON
//string the fetch.php produce, *iff* it generated a properly formatted
//JSON string.
function(data) { 
  $("#user_id_area").html(data.user_id);
}

Modify your HTML example as follows:

User ID: <span id="user_id_area">&nbsp;</span>

Where showHover is a helper function that actually shows the hover.

Here is a pattern for throttling the mousemove function:

jQuery.fn.elementlocation = function() {

    var curleft = 0;
    var curtop = 0;

    var obj = this;

    do {

    curleft += obj.attr('offsetLeft');
    curtop += obj.attr('offsetTop');

    obj = obj.offsetParent();

    } while ( obj.attr('tagName') != 'BODY' );


        return ( {x:curleft, y:curtop} );

};


$(document).ready( function() {

    var updatetimer = null;
    $("#gdimage").mousemove( function( eventObj ) {
        clearTimer(updatetimer);
        setTimeout(function() { update_hover(eventObj.pageX, eventObj.pageY); }, 500);
    }


    var update_hover = function(pageX, pageY) {
        var location = $("#gdimage").elementlocation();
        var x = pageX - location.x;
        var y = pageY - location.y;

        x = x / 5;
        y = y / 5;

        x = (Math.floor( x ) + 1);
        y = (Math.floor( y ) + 1);

        if (y > 1) {

            block = (y * 200) - 200;
            block = block + x;

        } else {

            block = x;

        }

        $("#block").text( block );
        $("#x_coords").text( x );
        $("#y_coords").text( y );

        $.ajax({
            type: "GET",
            url: "fetch.php",
            data: "x=" + x + "&y=" + y + "",
            dataType: "json",
            async: false,
            success: function(data) {
                //If you're using Chrome or Firefox+Firebug
                //Uncomment the following line to get debugging info
                //console.log("Name: "+data.username);
                $("#user_name_area").html(data.username);
            }
        });

    });

});
share|improve this answer
    
So I've added in echo - "{ userid: $user_id, username: $user_name }"; - to the PHP and then in the jQuery changed - success: function(data) { } - TO - function(data) { showHover(data.userid, data.username); } - ALSO - adding in - <div id="showHover"></span> - in the HTML for somwhere the information can be displayed? Is that right? Cause the div is there but no information is placed in there. –  Joe Jan 31 '11 at 19:55
    
I have also tried it this way the other day: stackoverflow.com/questions/4820303/… - but the load time was a little longer than I wanted. Could this be another approach that could work. BTW thank you for your help so far though guys!! :D –  Joe Jan 31 '11 at 19:56
    
No no, showHover was to be a function that you implemented yourself that updates the hover div and makes it visible. ---- So, I've updated my example to show you one possible way that you can modify the information in the hover div. –  Jason LeBrun Jan 31 '11 at 20:11
    
Hmm... I've updated my question with the code I have now - haven't yet added the time delay on the mouse move yet. As of now, I'm not getting any information appear in the user_name_area ? I'm also a little confused on where to put the time delay code you posted. I know in the jQuery but I'm not sure what to keep and what to delete. Sorry! :/ –  Joe Jan 31 '11 at 22:13
    
Sorry, I was just trying to guide you in the right direction to make the code you need. I've updated the example so that it's a little more explicit. I haven't tested it, so there may be a typo or bug. Incidentally, I would highly suggest taking some time to learn more about JavaScript and client-side programming, as well as debugging techniques to help you. It will make your life much easier moving forward. –  Jason LeBrun Jan 31 '11 at 23:03

Can you show us the PHP code? Do you use json_encode on the return data?

An alternative would be to simply make the image a background to a <div> container and arrange <a> elements in the <div> where you need them then simply bind with jQuery to their click handler.

This also has benefits if the browser does not support jQuery or javascript as you can actually put the URL you need in the HREF attribute of the anchor. This way if jQuery is not enabled the link will be loaded normally.

A skeleton implementation would look like this:

Example CSS

#imagecontainer {
background-image: url('gd_image.php'); 
width: 1000px; 
height: 1000px;
position: relative;
}

#imagecontainer a {
height: 100px;
width: 100px;
position: absolute;
}

#block1 {
left: 0px;
top: 0px;
}

#block2 {
left: 100px;
top: 0px;
}

Example HTML

<div id="imagecontainer">
<a href="" id="block1"></a>
<a href="" id="block2"></a>
</div>

Example jQuery

$(document).ready(function(){
$("#block1").click(function(){ /* do what you need here */ });
});
share|improve this answer
    
Wouldn't that take a while to load though, since you would have 40000 #block ID's in the CSS, as well as 40000 <a> tags in the HTML and 40000 queries in the PHP/MySQL? –  Joe Jan 31 '11 at 18:55
    
It'll be smaller than an image containing 4000 user profile pictures! You can compress the CSS using CSS selectors, or you can make the <a> tags float left so they fill up naturally –  Chris Jan 31 '11 at 18:58
    
This will be like a big red button with "DDoS me, Please!" label. –  Radoslav Georgiev Jan 31 '11 at 19:00
    
I could make them fill up by floating them, except the location is chosen by the user upon sign up, so that option won't work. @Radoslav, I'm not sure why you've written DDoS, it's users who signup to my site and become a member. And are placed on the home page image so people can keep in contact and see who is currently active within an online game... unless I'm mis-understood? –  Joe Jan 31 '11 at 19:03
    
While it's less data than a large image, it will be much more taxing on a user's browsers to render so many individual DOM elements. –  Jason LeBrun Jan 31 '11 at 19:07

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