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I am working on a Wordpress plugin and I need to pass PHP array to Javascript array. I have tried using join(), implode() and even Json_encode. But, the wordpress is not displaying any value.

When using join(), I used the code:

<?php
$php1 = array(1,2,3);

?>
<script language='Javascript'>
var lat = ["<?php echo join("\", \"", $php1); ?>"];
document.write(lat[1]);
</script>

If used on localhost(without wordpress), the above code provides a valid output. But, somehow, its not working on Wordpress. The "apache error log" show this message:

PHP Warning: join() [function.join]: Invalid arguments passed in \wp-content\plugins\Animation\animation.php on line 129, referer: http://localhost/Website/wp-admin/options-general.php?page=js

Same is the case with implode(). Server error log shows same above warning for implode().

Then I tried for json_encode using the code below:

var lat = <?php echo json_encode($php1); ?>;

But the no value is returned.

Edit: Code I used for JSON:

<?php
/*
Plugin Name: PHPToJavascript
*/
$arr = array(1,2,3,4,5,6,7,8,9);            //array to pass

add_action('admin_menu','admin_jav');

function admin_jav(){
add_submenu_page('options-general.php','Javarray','Javarray','manage_options','javarray',jav_handler);
}

function jav_handler(){
echo 'Into handler';

?>
<SCRIPT LANGUAGE = 'Javascript'><!--
var sm=<?php echo json_encode($arr); ?>;      //using Json  

document.write(sm[1]);                       //doesnt display any output!!!

</SCRIPT>
<?php
}
?>

Please guide me through this. I appreciate any help. It would be great if you help me in passing this PHP array to javascript array.

share|improve this question
    
You mean that if you write alert(<?php echo json_encode($php1) ?>);, nothing happens? Also note that the language attribute is deprecated, prefer using type="text/javascript" instead. –  rid Apr 8 '12 at 4:17
    
Well, I am using document.write() instead of alert(). But, I just want to pass contents of array $php1 to array lat and then display first element of lat. I used var lat = <?php echo json_encode($php1); ?>; document.write(lat[1]); and nothing happens. –  Alex Apr 8 '12 at 4:24
    
Try var <?php echo 'var lat = ' . json_encode($php1) . ';'; ?>; Otherwise I think you will have do var lat = "<?php echo json_encode($php1); ?>"; and then convert the string into json –  solartic Apr 8 '12 at 4:25
    
@solartic, what? JSON is JavaScript and your first sentence has nothing to do with the other. –  rid Apr 8 '12 at 4:26
    
@Alex, then your problem is not the PHP, but rather the JavaScript. Is the script tag inside the body tag? –  rid Apr 8 '12 at 4:26

3 Answers 3

up vote 0 down vote accepted

The $arr variable is out of scope. If you want to use the global $arr variable, you need to modify your jav_handler() function to bring the variable into local scope:

function jav_handler(){
    global $arr;
    // ...

However, it's good practice to always avoid global variables when you can, so the preferred way of doing this is to change the function to take the array as an argument and pass it explicitly when calling the function:

function jav_handler($arr){
    // ...
}

jav_handler($arr);
share|improve this answer
    
Wow, that worked!!! Thanks a lot friend. Saved my day!!! –  Alex Apr 8 '12 at 4:58

Change:

var lat = ["<?php echo join("\", \"", $php1); ?>"];
document.write(lat[1]);

to:

var lat = ["<?php echo join('", "', $php1); ?>"];
document.write(lat[0]);
share|improve this answer
1  
Except join() is the wrong way to do it regardless. –  Ignacio Vazquez-Abrams Apr 8 '12 at 4:45

Instead of:

var lat = ["<?php echo join("\", \"", $php1); ?>"];

I would try:

var lat = "<?php echo json_encode($php1); ?>";

Additionally, you may want to use a Browser that offers proper JS debugging. In chrome, you can use console.log(lat); to see exactly what lat holds

share|improve this answer

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