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I am trying to create a love it button the button is here www.dreamsynk.com.

I have taken code from different places and pasted them together, but there are things that are wrong i just am not sure what as i don't know PHP or ajax and my jquery is knowledge is minimal.

I have a database and a table called "loveit" with a field called "value".

Here is my code so far:

HTML:

<div class="love-it">
    <script type="text/javascript">
    jQuery(function() {
        jQuery('#like-it').click(function() {
        jQuery('#like-it').load('wp-content/themes/dreamsynk/value.php');
        });
    });​
    </script>
    <a href="#" class="btn btn-counter" id="like-it" data-count="0"><span>❤</span></a>
</div>

script.js

jQuery(document).ready(function() {

(function($) {
$('.btn-counter').on('click', function(event, count) {
event.preventDefault();

var $this = $(this),
    count = $this.attr('data-count'),
    active = $this.hasClass('active'),
    multiple = $this.hasClass('multiple-count');

// First method, allows to add custom function
// Use when you want to do an ajax request
if (multiple) {
    $this.attr('data-count', ++count);
    $("#like-it").unbind().bind("click", function() {
        $.ajax({
        type: 'POST',
        url: 'wp-content/themes/dreamsynk/loveit.php',
        data: 'action=add',
        success: function(result) {
        $("#like-it").html(result);
        }
        });
        return false;
    });
} else {
    $this.attr('data-count', active ? --count : ++count).toggleClass('active');
    $("#like-it").unbind().bind("click", function() {
        $.ajax({
        type: 'POST',
        url: 'wp-content/themes/dreamsynk/loveit.php',
        data: 'action=add',
        success: function(result) {
        $("#like-it").html(result);
        }
        });
        return false;
    });
} 
})
})(jQuery);

loveit.php

<?php mysql_connect("host", "database", "pass") or die    ("Error.");
mysql_select_db("database") or die ("error");

$increase = "UPDATE loveit SET value=value+1 WHERE id=1;";
$active_rate = mysql_query("SELECT * FROM loveit WHERE id=1;");
$val = 0;

if($rt = mysql_fetch_assoc($active_rate)) {
$val = $rt['value'];
}

if($_POST['action'] == 'add') {
mysql_query($increase);
print $val++;
}

$rat = mysql_query("SELECT * FROM loveit WHERE id=1;");

if($res = mysql_fetch_assoc($rat)) {
print '<a id="likeit'.($res['value']-1).' '; // id="likeit" 
}   
?>

value.php

<?php mysql_connect("host", "database", "pass") or die ("Error.");
mysql_select_db("database") or die ("error");

$rat = mysql_query("SELECT * FROM loveit WHERE id=1;");

if($res = mysql_fetch_assoc($rat)) {
    print ($res['value']-1); 
}

?>

And then obviously my stylesheet.

What have I done wrong here?

The button needs to be limited to one click like it is now and if they click it again it unloves me.

share|improve this question
2  
What doesn't work? "there are things wrong" is not a good description of your problem. –  verdesmarald Sep 23 '12 at 14:10
2  
You should definitely be using mysqli or PDO, as the mysql extension is deprecated. Are you getting error messages? And have you tried to use Firebug to see your AJAX requests are actually firing? –  Chris Henry Sep 23 '12 at 14:11
    
I haven't, i cant seem to ever get firebug to work. –  user1691337 Sep 23 '12 at 14:24
    
If you test the button it works only with the jquery part of it where the "1" is added but refresh the browser and it goes back to "0". Click the button twice it gives an "error". Which means the ajax and php files are not working? I cant figure out what i have done wrong? –  user1691337 Sep 23 '12 at 14:25
    
possible duplicate of Love It Button not working –  Sam Sep 23 '12 at 16:13

2 Answers 2

This may not fully answer all your questions, but will indicate some of the things that are wrong.

I assume you copy-pasted the 'love' script from some other site/tutorial. When I open your site in firefug and look at the console, I get this:
enter image description here

I copy and pasted the <script> bit from my firefox source view into notepad++ and got this:

<script type="text/javascript">
jQuery(function() {
    jQuery('#like-it').click(function() {
        jQuery('#like-it').load('wp-content/themes/dreamsynk/value.php');
    });
});?         // <---------- that question mark should not be there!
</script> 

Perhaps when you copy-pasted the script you also copied some hidden/bad symbols along with it.

UPDATE
Changing character encoding from UTF-8 to Western 8859-1 gets me this:
enter image description here

share|improve this answer
    
When you click it the second time it gives me Error., indeed. That seems to indicate that the error is on this line: <?php mysql_connect("host", "database", "pass") or die ("Error."); (Check to make sure the script can connect to your database(?)) –  Terry Seidler Sep 23 '12 at 14:26
    
(I assume "host", "database", "pass" is not the actual code but are just placeholders, but check them anyway ;)) –  Terry Seidler Sep 23 '12 at 14:27
    
Yes its dummy code. Host i copy pasted my host name, "database" is the database name, should this be the db username instead? and pass obviously my database password. –  user1691337 Sep 23 '12 at 14:30
    
i just made changes to script.js: from: success: function(result) { $("#like-it").html(result); to: success: function(result) { $("data-count").html(result); Have a look now, get no error message but refresh the browser and the value isnt saved –  user1691337 Sep 23 '12 at 14:35
    
the database table i created looks like this: FIELD:value, TYPE:int, LENGTH:i left blank and it shows "11" atm, DEFAULT:none, COLLATION:blank, ATTRIBUTES:blank, NULL:unticked, AUTO_INCREMENT:ticked, –  user1691337 Sep 23 '12 at 14:44

Uh, I just tried the script on your page, but it seems not to work correctly, there is only "count up" and no "count down", and also there is no control IP, so that one visitor can "love" your page several times and this is also bad.

you can see this tutorial. It muy help you to:

http://blog.deepscripts.com/how-to-build-a-like-my-page-script/

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