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I'm trying to use ajax to print "Hello World!", when you click a button, but it's not working, for some reason. What am I doing wrong?

test1.php

#testID {
border: 1px solid purple;
height: 50%;
width: 50%;
}

<?php

$commentID = "commentID";
$comment = "comment";

echo "
<input  type = 'submit' value = 'Post' onclick = \"ajaxPass('test2.php', $comment, $commentID,'testID')\">
<div id = 'testID'></div>
";

?>

<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.3/jquery.min.js"></script> 
<script type = "text/javascript"> 

function ajaxPass(action,comment,commentID,outputID) {

$.ajax({
type: "POST",
url: action,
data: { comment: comment, commentID: commentID },
error: function(xhr,status,error){alert(error);},
success:function(data) {
document.getElementById(outputID).innerHTML = data;        
} //end of success:function(data)
}); //end of $.ajax({

} //end of function ajaxPass(action,comment,commentID,outputID)

</script>

test2.php

<?php

echo "Hello World!";

?>
1
  • The syntax of your onclick attribute is wrong. do a view-source on your web page to see how it outputs.
    – Musa
    Jan 1, 2016 at 22:22

1 Answer 1

2

There's a syntax error in your code. Your echo statement should be like this:

echo "<input  type = 'submit' value = 'Post' onclick = \"ajaxPass('post.php', '{$comment}', '{$commentID}','testID')\"><div id = 'testID'></div>";

Use ctrl+u on your browser to see the source code, and check what's there in onclick attribute.

And also add this div <div id="outputID"></div> in your test1.php page.

3
  • Wait. You mean the only part was that you have to wrap php variables in brackets and single quotes when echoing them?!!!!
    – frosty
    Jan 1, 2016 at 22:34
  • @frosty Yes, that's it. Jan 1, 2016 at 22:34
  • I feel like screaming. I've been spending hours trying to find out exactly where I went wrong...Thanks!
    – frosty
    Jan 1, 2016 at 22:37

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