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I have made a test jquery-ajax post script, i am going to implement it in my rating and comment system, but this script is not working.

I have done only simple post request like this.

test.php

<script type="text/javascript" src="js/jquery.js"></script> 
<script type="text/javascript">
$.ajax({ 
  type: "POST",
  url: 'test.php',                        
  data: {
        value1:'value1', 
        value2:'value2', 
        value3:'value3', 
        value4:'value4', 
        value5:'value5', 
        value6:'value6', 
        value7:'value7', 
        value8:'value8'
      },                        
  cache: false,              
  success: function(value)          
   {
       alert(value)
   }
});
</script>

<?php 
$value1 =  $_POST['value1'];
$value2 =  $_POST['value2'];
$value3 =  $_POST['value3'];
$value4 =  $_POST['value4'];
$value5 =  $_POST['value5'];
$value6 =  $_POST['value6'];
$value7 =  $_POST['value7'];
$value8 =  $_POST['value8'];

$value = array($value1,$value2,$value3,$value4,$value5,$value6,$value7,$value8);
echo json_encode($value);

?>

Please see and suggest the ways to make it work.

Thanks.

share|improve this question
    
Its not working is not a computer error message. Check console and tell us what's the error. –  itachi Oct 20 '12 at 5:27
    
Undefined index: value1 and so on and json encode is [null,null,null,null,null,null,null,null] –  Tall boY Oct 20 '12 at 5:27
    
also i tried replacing ' to " in jquery, still not working –  Tall boY Oct 20 '12 at 5:32
    
Check the header. Is the datas are shown? –  itachi Oct 20 '12 at 5:35
    
how to check headers. please tell. –  Tall boY Oct 20 '12 at 5:36

3 Answers 3

Check the POST array variables are being set by

$value1 =  isset($_POST['value1']) ? $_POST['value1'] : '';
share|improve this answer
    
i tried $value1 = $_POST['value1'] ? $_POST['value1'] : '1'; $value2 = $_POST['value2'] ? $_POST['value1'] : '2'; and so on still not working. –  Tall boY Oct 20 '12 at 5:49
    
Did you get any output? –  itachi Oct 20 '12 at 5:57
    
Where is isset function in your code? Your code still gives error because the $_POST['value1'] is not yet set, while checking. –  Justin John Oct 20 '12 at 5:57
    
sorry i miss typed i tried like ` $value1 = isset($_POST['value1']) ? $_POST['value1'] : '1'; ` and so on, its giving values from php echo json_encode but not through jquery alert(value) –  Tall boY Oct 20 '12 at 5:59
    
Little bit confuse here. Where you are getting the values from php? In the page? –  itachi Oct 20 '12 at 6:05

you should use different file for ajax call otherwise it will return all html on that page

so i used two files

index.php

<script type="text/javascript">
$(document).ready(function() {
$.ajax({ 
 type: "POST",
 url: 'test.php',                        
 data: {
    value1:'value1', 
    value2:'value2', 
    value3:'value3', 
    value4:'value4', 
    value5:'value5', 
    value6:'value6', 
    value7:'value7', 
    value8:'value8', //value5:'value8' before
  },
 cache: false,              
 dataType: 'json',  //as you are return json from php file so i used dataType json
 success: function(value)          
  {
   $.each(value, function(key, val){
    alert(val);
   });
  }
});
});  

test.php

<?php 
$value1 =  $_POST['value1'];
 $value2 =  $_POST['value2'];
$value3 =  $_POST['value3'];
$value4 =  $_POST['value4'];
$value5 =  $_POST['value5'];
$value6 =  $_POST['value6'];
$value7 =  $_POST['value7'];
$value8 =  $_POST['value8'];

$value = array($value1,$value2,$value3,$value4,$value5,$value6,$value7,$value8);
echo json_encode($value);

?>
share|improve this answer
1  
you need to use different file for ajax otherwise.... incorrect statement. You can use the same file for GET, POST, AJAX. –  itachi Oct 20 '12 at 5:45
    
not working still –  Tall boY Oct 20 '12 at 5:49
    
@itachi yes, we can use GET, POST for ajax call but for this problem it will return full html code on ajax request. –  Pragnesh Chauhan Oct 20 '12 at 5:53
    
@TallboY what error did you get, please check console –  Pragnesh Chauhan Oct 20 '12 at 7:38

To go off what Pragnesh Chauhan mentioned, the problem looks like it's caused by the return not being valid JSON (since your other page code is included invalidating it. There are 2 simple solutions for this.

First, is Pragnesh Chauhan's, put your ajax calls in another file and more sure nothing else is being sent to the browser (including trailing spaces).

Second is to rework your current single file method into something that will work. You'd do this by making it look more like this...

<?php 
if(isset($_POST['value1']){ // Checking to see if something was sent to the ajax, you coudl also send another variable is value1 isn't a garuntee
  $value1 =  $_POST['value1'];
  $value2 =  $_POST['value2'];
  $value3 =  $_POST['value3'];
  $value4 =  $_POST['value4'];
  $value5 =  $_POST['value5'];
  $value6 =  $_POST['value6'];
  $value7 =  $_POST['value7'];
  $value8 =  $_POST['value8'];
  $value = array($value1,$value2,$value3,$value4,$value5,$value6,$value7,$value8);
  echo json_encode($value);
  exit(); // This tells it to stop so it won't echo out the rest of your page.
}?> 
<script type="text/javascript">
$.ajax({ 
  type: "POST",
  url: 'test.php',                        
  data: {
    value1:'value1', 
    value2:'value2', 
    value3:'value3', 
    value4:'value4', 
    value5:'value5', 
    value6:'value6', 
    value7:'value7', 
    value8:'value8'
  },                        
  cache: false,              
  success: function(value){
    alert(value)
  }
});
</script>

Of course there are other improvements you could make to make the whole thing a little neater but that should get you working at the least.

share|improve this answer
    
I dont know why but still not working i am getting no alert. –  Tall boY Oct 20 '12 at 6:11

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