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I am building a function that is suppose to answer a jquery ajax call. I am quite new to PHP and have newer learnt how to properly use echo json_encode(array('error' => false/true;. In this specific case want to json encode an array of arrays called $list. My code:

<?php
 if (!empty($_GET['id'])) {
   $id = $_GET['id'];

   try {
     $objDb = new PDO('mysql:host=localhost;dbname=blankett', 'root', 'root');
     $objDb->exec('SET CHARACTER SET utf8');

     $sql = "SELECT * FROM `forms2` where `master_id` = $id";
     $list = ($objDb->query($sql));

     foreach ($list as $row) {
        $out = array(
            '<tr>' . 
             '<td><a href="'.$row['link_form'].'">'.$row['name_form'].'</a></td>'.
             '<td>'.$row['date_added'].'</td>' . 
            '</tr>');
     }
     echo json_encode(array('error' => false, 'list' => implode('', $out)));

    /*** close the database connection ***/
    $objDb = null;
   }
   catch(PDOException $e)
   {
     echo $e->getMessage();
   }
 } else {
     echo json_encode(array('error' => true));
 }
?>

So the question is in general how do you use json_encode(array('error' => false/true;and how would I use it in this specific case?

share|improve this question
    
New to PHP and using PDO instead of MySQL_*? +1 –  Jimbo Mar 28 '13 at 15:56
    
yes, quite new to php over all. –  StenW Mar 29 '13 at 2:17

3 Answers 3

up vote 1 down vote accepted

First of your loop only assigns the last row retrieved from $list to $out. Secondly implode does not give you an array instead it takes an array as a parameter and returns string delimited by the delimiter you provide.

php.net/implode

here is what you are trying to do:

     $out = array();
     foreach ($list as $row) {
       $out[] = '<tr><td><a href="'.$row['link_form'].'">'.$row['name_form'] .   
               '</a></td><td>'.$row['date_added'].'</td></tr>';
     }

     echo json_encode('error' => false, 'list' => $out);

or if you are trying to pass a string instead of an array then use implode as you did on $out

share|improve this answer
    
This code looks right, but when I paste it I get an error. –  StenW Apr 1 '13 at 11:49

you can do something like this:

   $result = true;

    echo json_encode(array("error"=>$result
                               ));

and then:

    $.ajax({
    type: "POST",
    url: "yourfile.php",
    data : "data1="+yourdata1+"&data2="+yourdata2,
    dataType: "json",
    success: function (data) {
    var error = data['error'];
    if(error === false){
    //do something                                                  
    }
if(error === true) {
    //do something else     
}
   }
      });//end ajax             
share|improve this answer

In general, you can use json_encode directly with your data without having to "implode" it or anything like that.

If $out was an array of arrays, then your code:

echo json_encode(array('error' => false, 'list' => implode('', $out)));

Would produce:

{ result: false, list: 'Array,Array,Array' }

You should instead just allow json_encode to do it's job:

echo json_encode(array('error' => false, 'list' => $out));

Which would give you:

{ result: false,
  list:
   [ [ 1, 2, 3 ],
     [ 4, 5, 6 ],
     [ 7, 8, 9 ] ] }

The previous comment regarding your loop is important, however. Your loop reassigns the $out variable on each iteration. You definitely want to add the []= instead of just =. That is a shortcut in PHP that means "push this onto my array". It's actually a shortcut for array_push()

foreach ($list as $row) {
  $out []= array('<tr><td><a href="'.$row['link_form'].'">'.$row['name_form'].'</a></td>  <td>'.$row['date_added'].'</td></tr>');
}

And finally, your table row doesn't have to be an array, unless that's what you wanted.

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