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I have a php variable:

<?php
$imagename = $this->helper('catalog/image')->init($this->getProduct(), 'image', $_image->getFile());
?>

This is created in a loop. This loop displays some images.

When I hover over an image the onmouseover fires. This all goes okay.

The problem is:

onmouseover="myTimer=setTimeout('imageswitcher(<?php echo $imagename;?>)', 2000);"

The php doesn't work. Now I read something about ajax requests. But I have no idea what it is or how to use it. So I was hoping someone here could help me.

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2 Answers 2

up vote 3 down vote accepted

Firstly, you have a million and one problems here besides the PHP variable things. Firstly, you really shouldn't be using the onmouseover attribute anymore. Take a look at JavaScript & Events - Best Practice

So to replicate your problem with nicer code, you would do something like this.

<!-- This should be in an external JS file -->
<script>
    // IE Event Listener "Polyfill"
    var addEvent = function(element, event, callback) {
        if (document.addEventListener) {
            element.addEventListener(event, callback);
        } else {
            element.attachEvent('on' + event, callback);
        }
    };

    addEvent(document, 'load', function() {
        var element = document.getElementById('element');

        attachEvent(element, 'onmouseover', function() {
            myTimer = setTimeout('imageswitcher(<?php echo $imagename; ?>)', 2000);
        });
    }

</script>

<!-- Not an actual element, used for example purposes only -->
<element id="element"></element>

Variables should be assigned using 'var'


Your next problem is that your assigning myTimer without var. Now, it's not likely to be causing the issue here, it's good to keep it in mind.

var myTimer = setTimeout('imageswitcher(<?php echo $imagename; ?>)', 2000);

Function Strings


I don't know what your trying to do, but you're passing a string instead of a function to setTimeout. Let's fix that.

var myTimer = setTimeout(function() {
    imageswitcher(<?php echo $imagename; ?>);
}, 2000);

Addressing the issue


Now, let's address the actual issue here.

$imagename is probably a string, which you're not accounting for in your javascript. Let's fix that.

imageswitcher('<?php echo $imagename; ?>');

Putting it all together


<!-- This should be in an external JS file -->
<script>

    var addEvent = function(element, event, callback) {
        if (document.addEventListener) {
            element.addEventListener(event, callback);
        } else {
            element.attachEvent('on' + event, callback);
        }
    };

    addEvent(document, 'load', function() {
        var element = document.getElementById('element');

        attachEvent(element, 'onmouseover', function() {
            var myTimer = setTimeout(function() {
                imageswitcher('<?php echo $imagename; ?>');
            }, 2000);
        });
    };
</script>

<!-- Not an actual element, used for example purposes only -->
<element id="element"></element>
share|improve this answer
    
Many thanks. Your solution worked :) Thanks for the advice and for saving me some hours of trouble! –  Weszzz7 Oct 2 '12 at 15:37
    
This is very likely a typo, but attachEvent(element, 'onmouseover'... should attach mouseover instead of onmouseover. OP very understandably defines a global myTimer instead of a local var, as that definition happens inside an implicit event handler function and that myTimer variable would have been inaccessible from anywhere if it were a local in that function. –  lanzz Oct 2 '12 at 15:44

Embedding PHP values in Javascript code is most safely done with json_encode(), and since you're outputting in a HTML attribute, it would be wise to also put it through htmlspecialchars(); also, passing strings to setTimeout is discouraged practice, so you should pass an anonymous function there instead:

onmouseover="myTimer=setTimeout(function() { imageswitcher(<?php echo htmlspecialchars(json_encode($imagename));?>) }, 2000);"
share|improve this answer
    
Hmm, this still doesn't do the trick :( I commented on Dutchie432's answer what the content of $imagename could be-> example.com/media/catalog/product/cache/1/image/… Could this affect how i should do this? –  Weszzz7 Oct 2 '12 at 15:26
    
No, it shouldn't. I have put up a working example, and you can see its source code. –  lanzz Oct 2 '12 at 15:37
    
NatIsGleek's solution worked. But i still want to thank you for taking the time to try and help me :) –  Weszzz7 Oct 2 '12 at 15:38

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