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I am having a problem with my JSON retrieved data please go through whole code

This is my MySQL table:

mysql> select imgurl from images where family="shoes";
+-------------------------------+
| imgurl                        |
+-------------------------------+
| images/zara/shoes/thumbnail   |
| images/hermes/shoes/thumbnail |
| images/hermes/shoes/thumbnail |
| images/hermes/shoes/thumbnail |
+-------------------------------+

from the above table im retrieving the image urls with this jQuery code:

$(document).ready(function() {
     $('ul.sub_menu a').click(function() {
          $('#sliderid, .prodcls').fadeOut(4000);
              var txt = $(this).text();
              $.ajax({
                  type: 'POST',
                  url: 'thegamer.php',
                  data: {send_txt: txt},
                  datatype:'json',
                  success: function(data){
                         $('#pgwrapid').html(data);
                  } 
         });
     });
 });

This is the php code which gets request from the jQuery ajax:

  <?php
//Credentials
$server = "localhost";
$user = "root";
$db = "lemonx";

//Connect
$link = mysql_connect($server, $user);
//Select database
mysql_select_db($db, $link);

//Assemble query
$family = mysql_real_escape_string($_REQUEST['send_txt'], $link);
$query = "SELECT imgurl FROM images WHERE family='$family'";

//Query database
$result = mysql_query($query, $link);

//Output result, send back to ajax as var 'response'

$imgurl=array();
$i=0;
if(mysql_num_rows($result) > 0){
    //Fetch rows
    while($row = mysql_fetch_array($result)){
        $imgurl[$i] = $row['imgurl'];
        //echo $imgurl[$i]; 
        $i+=1;
        }
}
echo json_encode($imgurl); 

?>

Now, what happens that this is output at the below jQuery selector:

$('#pgwrapid').html(data);

OUTPUT

["images\/zara\/shoes\/thumbnail","images\/hermes\/shoes\/thumbnail","images\/hermes\/shoes\/thumbnail"] 

My problems are:

  1. Why is the backslash here?
  2. Is there any code to loop over the above output and extract each path and insert it into image tag like this:

       $('#pgwrapid').append("&lt;img src='"imagepath"' alt='Thumbnail'/&gt;");
    

Code will be useful.

share|improve this question
    
Not sure what's up with the back-slashes, but as far as creating new <img> elements, if data is an array then loop through it using a for loop or jQuery's generic iterator function $.each() to process the elements of the array one at a time. –  nnnnnn Jan 9 '12 at 4:46
    
i checked it with alert(typeof(data)); it gives string –  sajid Jan 9 '12 at 4:49
    
You have a bunch of questions that have been answered and has obviously helped you, but you have not accepted them. Please do else people may be not be inclined to help you. –  Sathya Jan 9 '12 at 4:59
    
have you tried using strip_slashes($row['imgurl']) in your while loop? –  adu Jan 9 '12 at 5:07
    
@Sathya thanx i marked the answers which helped me –  sajid Jan 9 '12 at 5:18

3 Answers 3

The slashes are expected escaping, and are valid per the specification at http://json.org. Note that even by just using Firebug:

"images\/zara\/shoes\/thumbnail"

evaluates to:

"images/zara/shoes/thumbnail"

... so this is nothing to be concerned about.

Yes, you could loop over each element using a standard for loop, or the Array.forEach function available in newer browsers, and simply call your append function for each thumbnail returned in the result.

share|improve this answer
    
i checked it with alert(typeof(data)); it gives string now how to loop through that string or convert it to array –  sajid Jan 9 '12 at 4:50
    
@sajid - api.jquery.com/jQuery.parseJSON –  ziesemer Jan 9 '12 at 4:51
    
i m parsing it like this var object = $.parseJSON(data); and then printing it $('#pgwrapid').html(object.[0]); but giving error at console –  sajid Jan 9 '12 at 5:04
    
object.[0]? Shouldn't it just be object[0]?? –  ziesemer Jan 9 '12 at 5:09
    
now this error JSON.parse: unexpected character [Break On This Error] return window.JSON.parse( data ); –  sajid Jan 9 '12 at 5:13

The data you are receiving back from your PHP code is a string containing the JSON -- and the PHP JSON escapes the slashes -- which is valid.

You need to decode the json text string so, something like changing

$('#pgwrapid').html(data);

to

var listofshoes = JSON.parse(data); // note this the data you were having in .html(data)
for (var i in listofshoes) {
   $('#pgwrapid').append( $("<p>").text(listofshoes[i]));
}

And you will get a list of the data appended -- not much more work to make it an clickable image, but you know what to do next :-)

share|improve this answer
    
my console is giving error with the parse JSON.parse: unexpected character [Break On This Error] return window.JSON.parse( data ); –  sajid Jan 9 '12 at 5:14
    
With a jQuery ajax call it should parse the JSON automatically, assuming it is actually valid JSON. The code in the question sets the data type to 'json'. –  nnnnnn Jan 9 '12 at 6:12

Your ajax call has two errors:

- method: 'post' (instead of type: 'POST')
- dataType: 'json' (instead of datatype:'json')

After this, you should check the answer. And write a loop that creates the image elements where you want.

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