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function like(){
    $('#likeo').html('<div style = "align:center"><img src = "images/loader.gif"></div></br>').show();
    var pid = <?php echo $post; ?>;
    $.post('include/like.php',{pids:pid} , function(data){
        $('#likeo').html(data).show();
    })
}

Is this jquery code right??. I tried everything and failed to get it working. this function gets executed by this code :

<input type='button'
 value='Like'
 name='like'
 id='inputl'
 class='buttonl'
 style='width: 46.4%; margin-top: 10px;'
 onclick = 'javascript:like();'>

It is a Ajax based post like system. the variable $ post is the post id to be liked. Basically, what it should do is :

  • First show the loader while doing the work
  • get the POST ID to send to the PHP code
  • using jquery, send the post ID to like.php with variable pid . And on completion of the task, Display the reply of php instead of the loader.

Thanks guys, Finally got it working

share|improve this question
3  
Considering how badly formatted it is, and also the fact that you haven't told us what the code is supposed to do, this is a very difficult question to answer. –  Chris Hayes Sep 14 '13 at 6:15
    
Nop, it doesn't look right... –  elclanrs Sep 14 '13 at 6:16
    
ALright, I will write what it is for.. –  Kitty Hawk Sep 14 '13 at 6:18
1  
The onclick code passes a parameter to the function, but the function doesn't take any arguments. That doesn't seem right. –  Barmar Sep 14 '13 at 6:18
1  
BTW, there's no need for javascript: in onXXX attributes. –  Barmar Sep 14 '13 at 6:19

2 Answers 2

up vote 0 down vote accepted

No, its wrong, because the function like does not take any argument in your original code, even though you are passing an argument in the function call.

function like(id){
    $('#likeo').html('<div style = "align:center"><img src = "images/loader.gif"></div></br>').show();
    var pid = id;
    $.post(
        'include/like.php',
        {pids: pid},
        function(data){
            $('#likeo').html(data).show();
        }
    )
}



<input
   type = 'button'
   value = 'Like'
   name = 'like'
   id = 'inputl'
   class = 'buttonl'
   style = 'width:46.4%;margin-top:10px;'
   onclick = 'like(<?php echo $post; ?>);'
>
share|improve this answer
    
I tried it, it doesnt work. And this is freaking me out. I have another code for commenting which is basically a edit if this like function. That works, I can comment in the page but cannot like. And I swear to god, it is the same code: –  Kitty Hawk Sep 14 '13 at 6:35
    
which part is not working? Does the function execute? console.log the id inside the like function –  kumar_harsh Sep 14 '13 at 6:36
    
Oh wait, maybe it is the semicolon inside the like function call... zzz.... –  kumar_harsh Sep 14 '13 at 6:37
    
No, its not the semicolon. –  Kitty Hawk Sep 14 '13 at 6:40
    
try console.log() inside your function. See if you are getting the correct id and data inside your post request's success callback. –  kumar_harsh Sep 14 '13 at 6:42

Make the like function receive a parameter and stop passing it in by echoing $post.

function like(pid){
    $('#likeo').html('<div style = "align:center"><img src = "images/loader.gif"></div></br>').show();
    $.post('include/like.php',{pids:pid} , function(data){
        $('#likeo').html(data).show();
    })
}

Your onclick should look like this:

onclick="like(<?php echo $post; ?>);"
share|improve this answer
    
ok, I will try it –  Kitty Hawk Sep 14 '13 at 6:27

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