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below is my $.ajax call to php

$(document).ready(function() {
$('ul.sub_menu a').click(function(e) {
e.preventDefault();
    var txt = $(this).attr('href');
    $.ajax({
        type: "POST",
        url: "thegamer.php",
        data:{send_txt: txt},
        success: function(data){
            $('#container').fadeOut('8000', function (){
                $('#container').html(data);
                $('#container').fadeIn('8000');
            });
        }   
    });
});
}); 

my php code

    if(mysql_num_rows($result) > 0){
    //Fetch rows
    while($row = mysql_fetch_array($result)){

        echo $row['img'];

        }
}

I m getting this output

images/man/caps/army-black.pngimages/man/caps/army-brown.pngimages/man/caps/army-grey.pngimages/man/caps/army-lthr.pngimages

these are basically image paths now how to loop over them in jquery and fit each image in image tag

any code will be useful

Plz Note I DONT NEED JSON

regards sajid

share|improve this question
    
1  
Are you saying $row['img'] has multiple image names in it and you need to break them down, or is all you need to do change the echo to add image tags? echo "<image>".$row['img']."</image>"; – John3136 Jan 30 '12 at 4:14
    
@john yes it has multiple image paths displayed in a div at jquery side i want to break them there at jquery end loop over it and fit it int img src='data[0]' /img – sajid Jan 30 '12 at 4:17

JSON is probably your best bet here. In PHP do something like this:

$ret = array();

while( $row = mysql_fetch_assoc( $result ) )
{
    $ret[] = $row['img'];
}

echo json_encode( $ret );

This will output something like the following

["image1","image2","image3"]

jQuery has a function which can convert this information into a javascript array. So put this code in your success callback.

var result = jQuery.parseJSON( data );

alert( result[1] );

EDIT: A method which does not use JSON

In PHP place each image url on a separate line

echo $row['img'], "\n";

Then in javascript, split the response by the new line character

var result = data.split( "\n" );
share|improve this answer
    
i dont want json please – sajid Jan 30 '12 at 4:30
    
sajid, JSON is simply a way of serializing information to a string. It doesn't require any additional frameworks or libraries or anything like that. What is the reason behind not wanting to use JSON? – Kane Wallmann Jan 30 '12 at 4:31
    
I have updated my answer to include an approach which does not use JSON – Kane Wallmann Jan 30 '12 at 4:35
    
I M TIRED OF JSON IT RETURN THIS ["images\/man\/caps\/army-black.png","images\/man\/caps\/army-brown.png","images‌​\/man\/caps\/army-grey.png"] when i apply this var result = jQuery.parseJSON( data ); alert( result[1] ); it doesnt work and gives <!html Doctype> the basic problem is this i need to loop over that data and fit it in img src and apppend it to dom – sajid Jan 30 '12 at 4:35
1  
sajid, if you are getting "<!DOCTYPE html>" then your PHP script must be writing more information to the browser then just the image urls. Does "thegamer.php" have any other code above the bit you posted? – Kane Wallmann Jan 30 '12 at 4:42

simply change your php code: `if(mysql_num_rows($result) > 0){

while($row = mysql_fetch_array($result)){

    echo ""<img src='".$row['img']."' /><br />";
  }  }
share|improve this answer

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