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I'm following a simple ajax>php>mysql example posted here http://openenergymonitor.org/emon/node/107

I can only display information from the first row. My table is set up like so

--------------
|  id  | name|
--------------
| 1    | Pat |
| 2    | Joe |
| 3    | Rob |
--------------

The php code

 $result = mysql_query("SELECT * FROM $tableName");          //query
 $array = mysql_fetch_row($result);                          //fetch result  
 echo json_encode($array);

The script

$(function () 
  {
    $.ajax({                                      
      url: 'api.php', data: "", dataType: 'json',  success: function(data)        
      { 
        var id = data[0];              //get id
        var vname = data[1];           //get name
         $('#output').html("<b>id: </b>"+id+"<b> name: </b>"+vname); 
      } 
    });
  }); 

ROW 1

If I put the var id = data[0]; I get the value 1. If I put the var name = data[1]; I get Pat.

ROWS 2 n 3 are undefined

Example var id=data[2]; returns undefined etc

My Questions

  1. Why do I only get the values from the first row?

  2. How can I get information for rows other than the first one?

From other questions on Stackoverflow I see that I will probably have to use a while loop, but I'm not really sure why or how.

share|improve this question
1  
try using mysql_fetch_array instead of mysql_fetch_row. Regards Jonas –  Jonas m Nov 5 '11 at 10:14
    
Can you access the php page alone instead of doing by ajax request and tell us what the json echo prints on the screen? –  Guilherme David da Costa Nov 5 '11 at 10:14
    
@Jonas Thanks. I tried mysql_fetch_array but it still returned undefined for data[2],data[3],etc –  moomoochoo Nov 5 '11 at 10:27
    
@Guilherme Costa I got ["1","Pat"] –  moomoochoo Nov 5 '11 at 10:41
    
By the way all mysql_fetch_* functions return only 1 row! –  ComFreek Nov 5 '11 at 10:53

1 Answer 1

up vote 15 down vote accepted

The old MySQL extension mysql is outdated, better use mysqli or PDO!

mysql_fetch_row() returns only 1 row! You have to put it into a loop, for example:

$data = array();
while ( $row = mysql_fetch_row($result) )
{
  $data[] = $row;
}
echo json_encode( $data );

You also have to change the JavaScript:

$.ajax({                                      
  url: 'api.php', data: "", dataType: 'json',  success: function(rows)        
  {
    for (var i in rows)
    {
      var row = rows[i];          

      var id = row[0];
      var vname = row[1];
      $('#output').append("<b>id: </b>"+id+"<b> name: </b>"+vname)
                  .append("<hr />");
    } 
  } 
});

By the way I would recommend you to use mysql_fetch_assoc() because it makes your code more flexible and cleaner.

share|improve this answer
    
+1 nice solution. I think you solved his problem. –  Guilherme David da Costa Nov 5 '11 at 10:20
    
@ComFreek The PHP seems to be working, because I get [["1","Pat"],["2","Joe"],["3","Rob"]] when I run the PHP. However, no result was displayed in #output. I must have made a mistake somewhere. –  moomoochoo Nov 5 '11 at 10:47
    
@moomoochoo Sorry, it was my fault! I've edited the code. –  ComFreek Nov 5 '11 at 10:52
    
@ComFreek Thank you so much!!!! It works now! –  moomoochoo Nov 5 '11 at 11:02
1  
@kayhanyüksel Yes, it's possible. There would be 2 techniques: a) Pull the data regularly from the server (PHP script). Use either 'normal' AJAX request and window.setInterval() or use long polling. b) Push the data, i.e. use WebSockets. There are many good resources on the internet, for example: websocket.org –  ComFreek Mar 19 '13 at 12:23

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