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I am getting an ajax response from a PHP. I want to decode the response , and get the 3 URL's

The code is HTML/JS

<script type="text/javascript">
 $(document).ready(function() {
$(".goButton").click(function() {
   var dir =  $(this).attr("id");

   var imId = $(".theImage").attr("id");
   $.ajax({
      url: "viewnew.php",
      data: {
         current_image: imId,
         direction    : dir
      },
      success: function(ret) {
          alert(ret);
         $(".theImage").attr("src", ret);


         if ('prev' == dir) {
            imId ++;
         } else {
            imId --;
         }
         $("#theImage").attr("id", imId);
      }
   });

});
});
</script>


<body>
<img id="416" class="theImage" src="" />
  <a href="#null" class="goButton" id="next">Next</a>
</body>

And the PHP file is

$query = 'SELECT * FROM picture ORDER BY RANDOM() LIMIT 2';
$result = mysql_query($query);
$rec = mysql_fetch_array( $result, MYSQL_ASSOC );

echo $rec['pic_location'];

I want to get the next 3 image also so that i can show that these 2 images will come up in full screen when the next button is clicked. One will Appear as a full size and other as a thumbnail. How do i decode the response from the Ajax ?

share|improve this question
3  
One thing that has nothing to do with your question, dont use MySql's Random function. If you have many rows and the query is used very often your server will go down (believe me, I once made that mistake.. once). Use Php to choose random numbers and then make the query out of it – Nicolás Torres Jun 7 '12 at 16:20
    
Use JSON to pass multiple values from your ajax script.. – Michael Roewin Tan Jun 7 '12 at 16:25
    
@NicolásTorres - Thank you :) – Yahoo Jun 7 '12 at 16:57
    
@MichaelRoewinTan -So i should then alert ("image1's url is :" + eval(json_variable);+ ); and for image 2 `alert ("image2's url is :" + eval(json_variable);+ );`` Is this right ? – Yahoo Jun 7 '12 at 17:04
up vote 1 down vote accepted
 $(document).ready(function() {
$(".goButton").click(function() {
   var dir =  $(this).attr("id");

   var imId = $(".theImage").attr("id");
   $.ajax({
      url: "viewnew.php",
      data: {
         current_image: imId,
         direction    : dir
      },
      success: function(ret) {
          var arr = eval(ret);
         alert("first: " + arr[0] + ", second: " + arr[1]);


         if ('prev' == dir) {
            imId ++;
         } else {
            imId --;
         }
         $("#theImage").attr("id", imId);
      }
   });

});
});

Not tested, but I think it should work. (This code assumes PHP returns the json_encode()'ed array)

share|improve this answer
    
Uncaught SyntaxError: Unexpected token < on line 3 , This is the place where the <head> tag is . – Yahoo Jun 7 '12 at 18:55
    
Are you sure you correctly closed the script with </script>? – 11684 Jun 7 '12 at 18:57
    
This happens after i click the next button. – Yahoo Jun 7 '12 at 18:57
    
Yes , its closed </script> – Yahoo Jun 7 '12 at 18:57
    
Are you sure there is no accidentaly lost <script> opening tag before there? Because I would think <HTML> <HEAD> Is two lines! – 11684 Jun 7 '12 at 19:13

To pass data from PHP to javascript, use the json_encode function on your output, then process with the js callback.

echo json_encode($rec['pic_location']);

share|improve this answer
    
how will i decode it then ? Can you show it please as an alert message ? – Yahoo Jun 7 '12 at 16:26
1  
you don't need to decode it, JSON is javascript – ilanco Jun 7 '12 at 16:28
    
eval(json_variable); – 11684 Jun 7 '12 at 16:28
    
@11684 - So i should then alert ("image1's url is :" + eval(json_variable);+ ); and for image 2 `alert ("image2's url is :" + eval(json_variable);+ );`` Is this right ? – Yahoo Jun 7 '12 at 16:55
    
@ilanco -So i should then alert ("image1's url is :" + eval(json_variable);+ ); and for image 2 `alert ("image2's url is :" + eval(json_variable);+ );`` Is this right ? – Yahoo Jun 7 '12 at 17:05

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