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I'am developing a zoom tool in my shopping cart and I am stuck on how to call a PHP variable in a jQuery function.

Here's my code :

jQuery(document).ready(function($){
$('#image1').addimagezoom({ // single image zoom
    zoomrange: [3, 10],
    magnifiersize: [800,300], 
    magnifierpos: 'right',
    cursorshade: true,
    largeimage: "php variable" //we add the directory of the image.
});
});

I need to put

$src ="images/products/".mysql_result($execute_select_product_query,0,'image1')."

in my function where I put PHP variable.

share|improve this question
    
You can't. Not without AJAX or include your JavaScript function inside a PHP file. – putvande Aug 14 '13 at 11:19
    
Do you use some template engine? – Dušan Radojević Aug 14 '13 at 11:20
up vote 14 down vote accepted

You have two or three options: if the Javascript is in the php file, you can

var phpVar = <?php echo $var; ?>;

Otherwise if the Javascript is anywhere at all, you can do:

<input type="hidden" id="phpVar" value="<?php echo $var; ?>">

and then access it as

$('#phpVar').val();

Example 1:

jQuery(document).ready(function($){
$('#image1').addimagezoom({ // single image zoom
    zoomrange: [3, 10],
    magnifiersize: [800,300], 
    magnifierpos: 'right',
    cursorshade: true,
    largeimage: <?php echo $var; ?> //we add the directory of the image.
});
});

Example 2:
Html:

<input type="hidden" id="phpVar" value="<?php echo $var; ?>">

Javascript

jQuery(document).ready(function($){
$('#image1').addimagezoom({ // single image zoom
    zoomrange: [3, 10],
    magnifiersize: [800,300], 
    magnifierpos: 'right',
    cursorshade: true,
    largeimage: $('#phpVar').val(); //we add the directory of the image.
});
});
share|improve this answer

Do it like this:

largeimage: "<?php echo $src; ?>"
share|improve this answer
    
What if the OP's jQuery is not inside a PHP file? – putvande Aug 14 '13 at 11:22
    
Note that this will only work if your PHP script actually outputs JavaScript inline or serves up the JS as text/javascript. – André Dion Aug 14 '13 at 11:22
    
no i tried it like you said and didn't work. – Anthony G. Helou Aug 14 '13 at 11:23
    
He have not mentioned that, so as per normal understanding it seems that his function is in the same PHP file. – Sahil Mittal Aug 14 '13 at 11:23
1  
Could you edit and extend your ques, and add the code where you had defined the PHP variable – Sahil Mittal Aug 14 '13 at 11:26

PHP is server side language and javascript is user side language. Don't mix it. Just use ajax. Or if you have included your script into the PHP file, you can write it to code:

  <?php $srcImg = 'Some value'; ?>
  jQuery(document).ready(function($){
    $('#image1').addimagezoom({ // single image zoom
        zoomrange: [3, 10],
        magnifiersize: [800,300], 
        magnifierpos: 'right',
        cursorshade: true,
        largeimage: "<?php echo $srcImg; ?>" //we add the directory of the image.
    });
  });

Ou use data-attrs

<body data-phpvar="<?php echo $srcImg; ?>">

And in js:

var phpvar = $("body").attr("data-phpvar");
share|improve this answer
1  
Depending on which version of jQuery he's using, you can also do. var phpvar = $("body").data("phpvar"); – Jako Aug 14 '13 at 13:02

You can use the php tags to echo your variable:

jQuery(document).ready(function($){
$('#image1').addimagezoom({ // single image zoom
    zoomrange: [3, 10],
    magnifiersize: [800,300], 
    magnifierpos: 'right',
    cursorshade: true,
    largeimage: "<?=$your_php_variable?>" //we add the directory of the image.
});
});

Edited: If jQuery is not included in php file then you can declare a javascript variable into the php file:

<?
php code
?>
<script type="text/javascript">
var my_js_variable = '<?=$my_php_variable?>';
</script>
<?
php code
?>
share|improve this answer
    
Unnecessary inclusion of print functions. – Lenin Aug 14 '13 at 11:31
    
You're right, edited. Thank you – Sal00m Aug 14 '13 at 11:38

Add php tag into your jquery "<?php echo $sample; ?>"

jQuery(document).ready(function($){
$('#image1').addimagezoom({ // single image zoom
    zoomrange: [3, 10],
    magnifiersize: [800,300], 
    magnifierpos: 'right',
    cursorshade: true,
    largeimage: "<?php echo $sample;?>" //we add the directory of the image.
});
});
share|improve this answer

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