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How do I use the JSON_encode function with mysql query results, do I need to iterate through the rows or can I just apply it to the entire results object?

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14 Answers

up vote 232 down vote accepted
$sth = mysql_query("SELECT ...");
$rows = array();
while($r = mysql_fetch_assoc($sth)) {
    $rows[] = $r;
}
print json_encode($rows);
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42  
I would as advise as you to mention that during the select query to use AS to rename the columns to something for public such as SELECT blog_title as title, this is cleaner and the public do not know what the exact columns are from the database. –  RobertPitt Feb 5 '11 at 17:04
6  
This code erroneously encodes all numeric values as strings. For example, a mySQL numeric field called score would have a JSON value of "12" instead of 12 (notice the quotes). –  Theo Sep 25 '11 at 18:48
13  
@RobertPitt, security based on concealing names of your columns is security by obscurity! –  TMS Dec 2 '11 at 21:10
2  
You may use my class: ajaxian.com/archives/php-based-mysql-to-json-converter –  Volatil3 Dec 9 '12 at 11:29
3  
@Tim: If you're getting to the point where your column names being known is the only barrier to SQL injection you've already lost, no? –  Paolo Bergantino Apr 2 '13 at 15:03
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http://www.php.net/mysql_query says "mysql_query() returns a resource".

http://www.php.net/json_encode says it can encode any value "except a resource".

You need to iterate through and collect the database results in an array, then json_encode the array.

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1  
mysql_query does not return a result set. that's what mysql_fetch* is for. –  Andy Dec 21 '08 at 1:30
    
Um... yeah... that's what goes in the iterating, between mysql_query and json_encode. Good call, Watson. –  Hugh Bothwell Jan 17 '09 at 4:27
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Try this, this will create your object properly

 $result = mysql_query("SELECT ...");
 $rows = array();
   while($r = mysql_fetch_assoc($result)) {
     $rows['object_name'][] = $r;
   }

 print json_encode($rows);
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Thanks this helped me a lot. My code:

$sqldata = mysql_query("SELECT * FROM `$table`");

$rows = array();
while($r = mysql_fetch_assoc($sqldata)) {
  $rows[] = $r;
}

echo json_encode($rows);
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this one, will give us an array containing; 1) an empty square bracket 2) followed by the curly bracket containing our returned result rows what is this differenct from the other? –  gumuruh Mar 21 '12 at 6:58
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The above will not work, in my experience, before you name the root-element in the array to something, I have not been able to access anything in the final json before that.

$sth = mysql_query("SELECT ...");
$rows = array();
while($r = mysql_fetch_assoc($sth)) {
    $rows['root_name'] = $r;
}
print json_encode($rows);

That should do the trick!

Pär

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My simple fix to stop it putting speech marks around numeric values...

while($r = mysql_fetch_assoc($rs)){
    while($elm=each($r))
    {
        if(is_numeric($r[$elm["key"]])){
                    $r[$elm["key"]]=intval($r[$elm["key"]]);
        }
    }
    $rows[] = $r;
}   
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Sorry, this is extremely long after the question, but:

$sql = 'SELECT CONCAT("[", GROUP_CONCAT(CONCAT("{username:'",username,"'"), CONCAT(",email:'",email),"'}")), "]") 
AS json 
FROM users;'
$msl = mysql_query($sql)
print($msl["json"]);

Just basically:

"SELECT" Select the rows    
"CONCAT" Returns the string that results from concatenating (joining) all the arguments
"GROUP_CONCAT" Returns a string with concatenated non-NULL value from a group
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Beware that GROUP_CONCAT() is limited by group_concat_max_len. –  eggyal Oct 11 '12 at 6:30
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One more option using FOR loop:

 $sth = mysql_query("SELECT ...");
 for($rows = array(); $row = mysql_fetch_assoc($sth); $rows[] = $row);
 print json_encode($rows);

The only disadvantage is that loop for is slower then e.g. while or especially foreach

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$name="v";
$city="indorte";
echo $name;
echo $city;


$user=$name."%";
$pass="";
echo $user;

$con=mysqli_connect("localhost","root","","test");
// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

$result = mysqli_query($con,"SELECT name,password FROM login where name like '$user' ") or die(mysql_errno()."error in query execution") ;



while($r = mysqli_fetch_array($result))
  {`enter code here`
 echo $r['name'];
 echo "<br>";
  }

  $rows = array();
while($r = mysql_fetch_assoc($result)) {
    $rows['root_name'] = $r;


}
print json_encode($rows);

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, object given in F:\xampp\htdocs\jquerypost\demo3.php
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$rows = json_decode($mysql_result,true);

as simple as that :-)

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For example $result = mysql_query("SELECT * FROM userprofiles where NAME='TESTUSER' ");

1.) if $result is only one row.

$response = mysql_fetch_array($result);
echo json_encode($response);

2.) if $result is more than one row. You need to iterate the rows and save it to an array and return a json with array in it.

$rows = array();
if (mysql_num_rows($result) > 0) {
    while($r = mysql_fetch_assoc($result)) {
       $id = $r["USERID"];   //a column name (ex.ID) used to get a value of the single row at at time
       $rows[$id] = $r; //save the fetched row and add it to the array.
    }
}    
echo json_encode($rows);
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we could simplify Paolo Bergantino answer like this

$sth = mysql_query("SELECT ...");
print json_encode(mysql_fetch_assoc($sth));
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I know that this is a very old question. But nobody shows the simplest alternative to fixing the problem of integers showing up as strings. @mouckatron offers the JSON_NUMERIC_CHECK flag of json_encode() in the answer below. Simple and it works like a charm!

PHP json_encode encoding numbers as strings

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Unless they're zip codes - then you lose the leading 0 - not as useful as walking the array and converting types prior to encoding –  Dan Apr 9 at 19:18
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The code below works fine here!

<?php

  $con=mysqli_connect("localhost",$username,$password,databaseName);

  // Check connection
  if (mysqli_connect_errno())
  {
   echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

  $query = "the query here";

  $result = mysqli_query($con,$query);

  $rows = array();
  while($r = mysqli_fetch_array($result)) {
    $rows[] = $r;
  }
  echo json_encode($rows);

  mysqli_close($con);

?>

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