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 need to extract the URL's from the php datas, how can i achieve this?

PHP

$query = 'SELECT * FROM picture LIMIT 3';
$result = mysql_query($query);


while ($rec = mysql_fetch_array($result,  MYSQL_ASSOC)) {
    $url.=$rec['pic_location'].";";
}

echo json_encode($url);

Ajax

 <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){
          console.log(ret);
          var arr = ret;
          alert("first: " + arr[0] + ", second: " + arr[1]);
          alert(arr[0]);
          $(".theImage").attr("src", +arr[0]);
          if ('prev' == dir) {
        imId ++;
     } else {
        imId --;
     }
     $("#theImage").attr("id", imId);
          }
       });

    });
    });
    </script>

the alert message isn't working its just printing H T ( i think these are http://... )

share|improve this question
    
What does the console.log shows? –  Florian Margaine Jun 8 '12 at 8:34
    
@FlorianMargaine - Failed to load resource: the server responded with a status of 404 (Not Found) this happend on $(".theImage").attr("src", +arr[0]); and the alert(arr[0]); shows the proper URL –  Adi Mathur Jun 8 '12 at 9:14

2 Answers 2

up vote 1 down vote accepted

You're returning a string which is not parsed as JSON. Just add dataType: "json" to the ajax settings.

And since you're reading it as an array in your javascript you should return it like so:

while ($rec = mysql_fetch_array($result,  MYSQL_ASSOC)) {
    $url[] = $rec['pic_location'];
}
share|improve this answer
    
Thank you , i am getting a valid message now in the alert box:) but why isnt the Scr of image changing ? alert(arr[0]); $(".theImage").attr("src", +arr[0]); the inspect element shows Src=NaN –  Adi Mathur Jun 8 '12 at 9:09
1  
Remove the + since you don't want to calculate anything. JS now assumes you mean 0+arr[0] –  Thomas Jun 8 '12 at 9:17

You are sending a string in your PHP and expecting an array as response in javascript. Change you PHP to

while ($rec = mysql_fetch_array($result,  MYSQL_ASSOC)) {
    $url[] = $rec['pic_location'];
}

And javascript to

$.ajax({
      url: "viewnew.php",
      dataType: "JSON",
      data: {
         current_image: imId,
         direction    : dir
      },
      success: function(ret){
          console.log(ret[0]);
          var arr = ret;
          alert(arr);  
          alert("first: " + arr[0] + ", second: " + arr[1]);    // THIS IS NOT WORKING!!!!
          if ('prev' == dir) {
            imId ++;
         } else {
            imId --;
         }
         $("#theImage").attr("id", imId);
      }
   });
share|improve this answer
    
Thank you , i am getting a valid message now in the alert box:) but why isnt the Scr of image changing ? alert(arr[0]); $(".theImage").attr("src", +arr[0]); the inspect element shows Src=NaN –  Adi Mathur Jun 8 '12 at 9:09
1  
don't use +arr[0] and also put an alert(arr[0]) to see what are you actually setting the src attribute to –  slash197 Jun 8 '12 at 9:12

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.