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How to convert MySQL data base table into JSON data using PHP. Is there any way to do this?

Below is the php code I am using:

<?php 
$host = "emriphone.db.6420177.hostedresource.com"; 
$user = "emriphone"; 
$pass = "Light12-"; 
$database = "emriphone"; 

$linkID = mysql_connect($host, $user, $pass) or die("Could not connect to host."); 
mysql_select_db($database, $linkID) or die("Could not find database."); 

$sth = mysql_query("SELECT * FROM ProviderAppointmentListings");
$rows = array();
while($r = mysql_fetch_assoc($sth)) {
   $rows[] = $r;
}
print json_encode($rows);
?>
share|improve this question
    
It would be good if you show us the suggested json data format. In general @Secator is right. –  Minras Mar 20 '12 at 11:17
    
what error do you get? –  greut Mar 20 '12 at 11:53
    
@greut Call to undefined function: json_encode() in –  Aftab Ali Mar 20 '12 at 11:59
    
Upgrade PHP bro! You're living in that Dark Age where PHP couldn't goto. –  greut Mar 20 '12 at 17:35

3 Answers 3

up vote 8 down vote accepted

Try like this:

$query = mysql_query("SELECT * FROM table");
$rows = array();
while($row = mysql_fetch_assoc($query)) {
    $rows[] = $row;
}
print json_encode($rows);

If you don't have json_encode add this before the code above:

if (!function_exists('json_encode'))
{
  function json_encode($a=false)
  {
    if (is_null($a)) return 'null';
    if ($a === false) return 'false';
    if ($a === true) return 'true';
    if (is_scalar($a))
    {
      if (is_float($a))
      {
        // Always use "." for floats.
        return floatval(str_replace(",", ".", strval($a)));
      }

      if (is_string($a))
      {
        static $jsonReplaces = array(array("\\", "/", "\n", "\t", "\r", "\b", "\f", '"'), array('\\\\', '\\/', '\\n', '\\t', '\\r', '\\b', '\\f', '\"'));
        return '"' . str_replace($jsonReplaces[0], $jsonReplaces[1], $a) . '"';
      }
      else
        return $a;
    }
    $isList = true;
    for ($i = 0, reset($a); $i < count($a); $i++, next($a))
    {
      if (key($a) !== $i)
      {
        $isList = false;
        break;
      }
    }
    $result = array();
    if ($isList)
    {
      foreach ($a as $v) $result[] = json_encode($v);
      return '[' . join(',', $result) . ']';
    }
    else
    {
      foreach ($a as $k => $v) $result[] = json_encode($k).':'.json_encode($v);
      return '{' . join(',', $result) . '}';
    }
  }
}
share|improve this answer
    
Fatal error: Call to undefined function: json_encode() in this gives error using this code –  Aftab Ali Mar 20 '12 at 11:16
    
json_encode requires PHP 5.2.0+. What version do you use? –  Secator Mar 20 '12 at 11:19
    
Server version: 5.0.91-log this is given on my data base which i am using –  Aftab Ali Mar 20 '12 at 11:23
    
1  
See my updated snippet –  Secator Mar 20 '12 at 12:23

I guess you mean the data in a MySQL-database table right?

In that case, have a look at PHP's json_encode().

You can fetch the data from the db into an array and then covert it to JSON.

share|improve this answer

put the resultset of the query into an array and then use json_encode

$sql="Select * from table";
$l= array();
$result = mysql_query($sql);
while ($row = mysql_fetch_assoc($result)) {
  $l[] = $row;
}
$j = json_encode($l);
echo $j;

you may use id table as index of the array.

share|improve this answer
    
i have used this but same error –  Aftab Ali Mar 20 '12 at 11:42
    
you must upgrade php or install pecl.php.net/package/json, look at the version php.net/manual/en/function.json-encode.php –  wdog Mar 6 '13 at 10:12

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