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I'm trying to do a realllly simple post of a javascript variable to a php file.

Jquery bit in keyinput.php:

<script type="text/javascript">

var imgArray = [<?php echo implode(',', getImages($cat, $site)) ?>];
$(document).ready(function() {      

    var img = document.getElementById("showimg");
    img.src = imgArray[<?php echo $imgid ?>];
    var imgIndex = <?php echo $imgid ?>;

    $(document).keydown(function (e) {
        var key = e.which;
        int rightarrow = 39;
        int leftarrow = 37;
        int random = 82;

        if (key != rightarrow && key != leftarrow && key != random) {
            return;
        }
        else {
            //next image: right arrow
            if (key == rightarrow) 
            {
                imgIndex++;
                if (imgIndex > imgArray.length-1) 
                {
                    imgIndex = 0;
                }
                img.src = imgArray[imgIndex];
            }
            //last image: left arrow
            if (key == leftarrow) 
            {
                if (imgIndex == 0) 
                {
                    imgIndex = imgArray.length;
                }
                img.src = imgArray[--imgIndex];
            }
            //random: r
            if (key == random) 
            {
                imgIndex = Math.floor((Math.random()*(imgArray.length-1))+1);
                img.src = imgArray[imgIndex];
            }   
        }
        $.post('./templates/viewcomic.php', {variable: imgIndex});
    });
});

</script>
<?php
function  getImages($catParam, $siteParam) {
include './scripts/dbconnect.php';

if ($siteParam == 'artwork') { 
    $table = "artwork"; 
}       
else { 
    $table = "comics"; 
}   

if ($catParam != null) {
    $catResult = $mysqli->query("SELECT id, title, path, thumb, catidFK FROM $table WHERE catidFK = $catParam");
}
else {
    $catResult = $mysqli->query("SELECT id, title, path, thumb, catidFK FROM $table");
}

$img = array();
while($row = $catResult->fetch_assoc()) 
{
    $img[] = "'" . $row['path'] . "'";
}
return $img;
}
?>

PHP bit in viewcomic.php:

include './scripts/keyinput.php'; 

$JSIndex = $_POST['variable'];
echo "Index = " . $JSIndex;
//$JSIndex should be equal to the javascript variable imgIndex... but it outputs nothing

Any thoughts would be extremely helpful! I'm trying to get my comics website to go live.

Thanks!

share|improve this question
3  
Where do you expect to see the output? You are doing an AJAX post, and you have no success handler in the $.post(). Look in your browser's network console to see the response. –  Michael Berkowski Nov 14 '12 at 1:54
    
Have you tried putting single quotes around your var like var imgIndex = '<?php echo $imgid ?>'; –  Zak Nov 14 '12 at 1:54
2  
For debugging purposes, it's better to do var_dump($_POST); and inspect the results in the network console of your browser. –  Ja͢ck Nov 14 '12 at 1:56
    
@Jack yeah I tried that. It says "array empty" –  Growler Nov 14 '12 at 1:58
    
Is your included keyinput.php destroying / manipulating the $_POST superglobal? Your code looks correct to me. –  David Müller Nov 14 '12 at 2:07

1 Answer 1

up vote 1 down vote accepted

Your logic is wrong: at the moment you define your key variable, e is undefined. Then you attach your event handler inside an if statement that will always evaluate to false so that will never work.

The assignment to key should be inside your event handler and the conditional needs to go, you already have that inside your event handler.

Edit: you should also only do your ajax call if one of your action keys is pressed (put it inside the event handler) and do something with the result.

Edit 2: Checkout the manual on $.post, you should add a callback function to process the return value of your php script.

For example:

$.post(
       './templates/viewcomic.php',
       { variable: imgIndex },
       function(data) {    /* data contains what you have echoed out in your php script */
           alert(data);
       }
      );
share|improve this answer
    
oops oops I didn't mean to write it like that, lemme fix –  Growler Nov 14 '12 at 3:27
    
updates above. Still not working –  Growler Nov 14 '12 at 3:34
    
@Growler You are still not using the return value of your ajax function. –  jeroen Nov 14 '12 at 15:13
    
can you please explain? I thought I could do a simple $.post("php file I want to call", {variable: imgIndex}) and capture that imgIndex javascript value in the php file –  Growler Nov 14 '12 at 15:16
    
@Growler See my edit. –  jeroen Nov 14 '12 at 15:21

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