Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a commenting system so when the submit button is pressed It sends the comment to the database and then adds it to the comments list on the page.

comments.php

    <div id="comments" itemscope itemtype="http://schema.org/UserComments">
                              <?php do { ?>
            <div class="comment shadow effect">
                    <p class="left tip" title="<?php echo $row_getComments['comment_author'];?> Said">
                     <img class="avatar" src="<?php echo $row_getComments['avatarurl'];?>" /></p>
                          <p class="body right" itemprop="creator"><?php echo $row_getComments['comment_entry'];?></p>

                    <div class="details small">
                        <span class="blue"><?php echo timeBetween($row_getComments['communt_date'],time());?></span> · <a class="red" href="#" onclick="$(this).delete_comment(<?php echo $row_getComments['comment_id'];?>); return false;">Remove</a>
                    </div>
                </div>
                            <?php } while ($row_getComments = mysql_fetch_assoc($getComments)); ?>
                            </div>

    //Add Comment//
                            <div class="add_comment">
            <div class="write shadow comment">
                <p class="left">
                    <img class="avatar" src="#" />
                </p>

                <form method="POST" name="addcomment">
<p class="textarea right"><input type="hidden" name="username" value="<?php echo $_SESSION['username'];?>" />
                    <textarea class="left" cols="40" rows="5" name="post_entry"></textarea>
        <input class="left" value="SEND" type="submit" />
                   </p> </form>

            </div>
            <a onclick="$(this).add_comment(<?php echo $row_getSinglePost['post_id'];?>);return false;" class="right effect shadow" href="#">Add Comment</a>
        </div>

ajax.js- this is how it sends and recieves information. I know the submit button works because it grays it out

 jQuery.fn.add_comment = function (page_id) {
var that = $(this);

that.hide(10, function () {
    that.prev().show();
});

that.parent().find('input[type=submit]').click(function () {
    var value = $(this).prev().val();
    if (value.length < 3) {
        $(this).prev().addClass('error');
        return false;
    } else {
        var input = $(this);
        input.prev().attr('disabled', true);
        input.attr('disabled', true);
        $.post("ajax.php", {
            post_id: page_id,
            comment: value
        }, function (data) {
            if (data.error) {
                alert("Your Comment Can Not Be Posted");
            } else {
                that.parent().prev('.comments').append('<div class="comment rounded5"><p class="left"><img class="avatar" src="' + data.avatar + '" /></p><p class="body right small">' + data.comment + '<br /><div class="details small"><span class="blue">' + data.time + '</span> · <a class="red" href="#" onclick="$(this).delete_comment(' + data.id + '); return false;">Remove</a></div></p></div>');
                input.prev().val('');
            }
            input.prev().attr('disabled', false);
            input.attr('disabled', false);
        },'json');

    }
    return false;
});

};

ajax.php

require_once('connections/Main.php');
$username = $_SESSION['username'];
mysql_select_db($database_Main);
function getavatar($username){
    $result = mysql_query("SELECT profile_pic FROM `users` WHERE `username` = '$username' LIMIT 1");
    $row = mysql_fetch_row($result);
    return $row[0];
}
    if(isset($_POST['post_id']) and isset($_POST['comment'])){
        $post_id = intval($_POST['post_id']);
        $comment = mysql_escape_string($_POST['comment']);
        $time = time();
        $insertcom = mysql_query("INSERT INTO `blog_comments` (`author`, `post_num`, `comment_entry`, `communt_date`) VALUES ($username, '{$post_id}', '{$comment}', '{$time}')");
        if($insertcom){
            $id = mysql_insert_id();
            exit(json_encode(array(
                'id' => $id,
                'avatar' => getavatar($username),
                'time' => timeBetween($time, time()),
                'comment' => $comment,
            )));
        }
    }

Also how would I error check this to submit an error if say the query didn't work?

share|improve this question
2  
What is not working? What is "that" and "input"? Where is it not working? how does your html structure look like? does the ajax return properly? Check with Firebug/ChromeDeveloperTools how the json output is. Basically: Learn how to debug shit! –  mightyuhu Jul 14 '12 at 15:24
    
ok my id is returning null but all the others arent wouldnt it still work without the id though since it returns it –  kdogisthebest Jul 14 '12 at 15:30
    
the code does not return the json –  kdogisthebest Jul 14 '12 at 15:35

2 Answers 2

up vote 3 down vote accepted
  1. Use echo instead of exit like Rafael said. But you don't need to use die() or exit() or whatever. Clean code don't need to use die() or exit().
  2. You used a comma behind $comment inside your array, but no entry follows the comma (in my code the 'error' => false follows.
  3. You can check if the insert was a success when you ask if the mysql_affected_rows was greater than zero (http://www.php.net/manual/en/function.mysql-affected-rows.php). mysql_affected_rows returns the rows that were affected by INSERT, UPDATE and DELETE.

Code:

if($insertcom){
    //Check if INSERT was successfully
    if(mysql_affected_rows() > 0) {
        $id = mysql_insert_id();
        echo(json_encode(array(
            'id' => $id,
            'avatar' => getavatar($username),
            'time' => timeBetween($time, time()),
            'comment' => $comment, //here is the ,
            //Added line to state if error
            'error' => false
        )));
    } else {
        //Echo to return error when INSERT was unsuccessful
        echo(json_encode(array('error' => true)));
    }
}
share|improve this answer
    
In Google I get cannot read property error of null –  kdogisthebest Jul 14 '12 at 16:04
    
In Google? Try to use quotes around true and false: 'true' 'false'. In your javascript you need to compare with == 'true' –  WolvDev Jul 14 '12 at 16:15
    
in debug it says "cannot read property 'error' of a null –  kdogisthebest Jul 14 '12 at 16:21
    
Ahh okay, now I understand. Have you tried my fix? –  WolvDev Jul 14 '12 at 16:23
    
yea I think its saying data is a null object –  kdogisthebest Jul 14 '12 at 16:26

Use echo() instead of exit(json.decode...)

Also, insert die() after this echo.

share|improve this answer
    
putting echo in my php code doesn't work –  kdogisthebest Jul 14 '12 at 15:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.