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I want to get json with php encode function like the following

<?php 
  require "../classes/database.php";

  $database = new database();
  header("content-type: application/json");
  $result = $database->get_by_name($_POST['q']);   //$_POST['searchValue']

  echo '{"results":[';
  if($result)
  {
     $i = 1;
     while($row = mysql_fetch_array($result))
     {
        if(count($row) > 1) 
        {
           echo json_encode(array('id'=>$i, 'name' => $row['name']));
           echo ",";
        }
        else 
        {
           echo json_encode(array('id'=>$i, 'name' => $row['name']));
        }
        $i++; 
     }
  }
  else
  {
     $value = "FALSE";
     echo json_encode(array('id'=>1, 'name' => ""));  // output the json code
  }

  echo "]}";

i want the output json to be something like that

{"results":[{"id":1,"name":"name1"},{"id":2,"name":"name2"}]}

but the output json is look like the following

{"results":[{"id":1,"name":"name1"},{"id":2,"name":"name2"},]}

As you realize that there is comma at the end, i want to remove it so it can be right json syntax, if i removed the echo ","; when there's more than one result the json will generate like this {"results":[{"id":1,"name":"name1"}{"id":2,"name":"name2"}]} and that syntax is wrong too

Hope that everybody got what i mean here, any ideas would be appreciated

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5 Answers 5

up vote 6 down vote accepted

If I were you, I would not json_encode each individual array, but merge the arrays together and then json_encode the merged array at the end. Below is an example using 5.4's short array syntax:

$out = [];
while(...) {
  $out[] = [ 'id' => $i, 'name' => $row['name'] ];
}
echo json_encode($out);
share|improve this answer
    
Ok you are right, thanks for your help –  osos Sep 23 '11 at 16:30

Do the json_encoding as the LAST step. Build your data structure purely in PHP, then encode that structure at the end. Doing intermediate encodings means you're basically building your own json string, which is always going to be tricky and most likely "broken".

$data = array();
while ($row = mysql_fetch_array($result)) {
   $data[] = array('id'=>$i, 'name' => $row['name']);
}
echo json_encode($data);
share|improve this answer

build it all into an array first, then encode the whole thing in one go:

$outputdata = array();
while($row = mysql_fetch_array($result)) {
    $outputdata[] = $row;
}

echo json_encode($outputdata);
share|improve this answer
    
another solution, work fine, thanks –  osos Sep 23 '11 at 16:32

Here is a solution that i came with

 $i = 1; 
 $array = array(); 
 while($row = mysql_fetch_array($result)) 
 { 
 $array[] = json_encode(array('id'=>$i, 'name' => $row['name'])); 
 $i++; 
 } 
 echo implode(',', $array); // Take output array glue it with the  

This will put the json into an array and then implode it with glue (,) outputing the following {"results":[{"id":1,"name":"maadi"},{"id":2,"name":"monofiya"}]} without the need to do the array first then pass it to the json_encode() function

share|improve this answer

Just change that lines

echo json_encode(array('id'=>$i, 'name' => $row['name']));
echo ",";

To these

echo ",";
echo json_encode(array('id'=>$i, 'name' => $row['name']));
share|improve this answer
1  
Then you end up with ,[],[],[] and back in basically the same boat. –  Marc B Sep 23 '11 at 16:20
    
Yea, i think it won't work –  osos Sep 23 '11 at 16:33
    
Then there is something else wrong with it ! Now I see what's wrong. You don't have to check if row count is more than 1 you have to check if the $i is more than one !! So change that if(count($row) > 1) to if($i > 1) This will work for sure ! This will write [],[],[] –  Merianos Nikos Sep 23 '11 at 16:35

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