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I am trying to print out a table using data which i am fetching from the database.This is the code

<?php
  $host = "localhost";
  $user = "root";
  $pass = "";
  $databaseName = "caliban";
  $tableName = "caliban";
  $con = mysql_connect($host,$user,$pass);
  $dbs = mysql_select_db($databaseName, $con);
  $result = mysql_query("SELECT * FROM $tableName");            //query
  $array = mysql_fetch_assoc($result);                          //fetch result   
  //--------------------------------------------------------------------------
  // 3) echo result as json
  //--------------------------------------------------------------------------
$result = mysql_query("SELECT * FROM $tableName");            //query 

$rows = Array();
$i=0;
while($row = mysql_fetch_assoc($result)){
        //array_push($rows, $row);
      $rows[$i++] = $row;
}
for($j=0;$j<count($rows); $j++){
      echo
      "<table><tbody><tr id='$rows[$j]['id']'>
<td><input type='checkbox' /></td>
<td>$rows[$j]['firstname']</td>
<td>$rows[$j]['lastname']</td>
<td>$rows[$j]['city']</td>
<td>$rows[$j]['continent']</td>
</tr></tbody></table>";
}
?>

The error get repeated 8 times,since those are the total number of rows i am having.

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1  
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  h2ooooooo May 29 '13 at 9:10
1  
Does this error have its name? –  Voitcus May 29 '13 at 9:10
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3 Answers

Why are you doing it that complicated?

Please take a look at this tutorial: http://php.net/manual/en/function.mysql-fetch-assoc.php

Maybe you also consider switching to MySQLI as MySQL is depreceated

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$rows = Array();
$i = 0;
echo "<table><tbody>";
while($row = mysql_fetch_assoc($result)) {
  extract($row);
  ?>
  <tr id="<?php echo $id ?>" >
        <td><input type=checkbox /></td>
        <td><?php echo $firstname ?></td>
        <td><?php echo $lastname ?></td>
        <td><?php echo $city ?></td>
        <td><?php echo $continent ?></td>
      </tr>
      <? }

echo "</tbody></table>";
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up vote 0 down vote accepted

This is how i fixed it

<?php
  $host = "localhost";
  $user = "root";
  $pass = "";
  $databaseName = "caliban";
  $tableName = "caliban";
  $con = mysql_connect($host,$user,$pass);
  $dbs = mysql_select_db($databaseName, $con);
  $result = mysql_query("SELECT * FROM $tableName");            //query
  $array = mysql_fetch_assoc($result);                          //fetch result   
  //--------------------------------------------------------------------------
  // 3) echo result as json
  //--------------------------------------------------------------------------
$result = mysql_query("SELECT * FROM $tableName");            //query 

$rows = Array();
$i=0;
while($row = mysql_fetch_assoc($result)){
        //array_push($rows, $row);
      $rows[$i++] = $row;
}
for($j=0;$j<count($rows); $j++){
$id = $rows[$j]['id'];
$firstname = $rows[$j]['firstname'];
$lastname = $rows[$j]['lastname'];
$city = $rows[$j]['city'];
$continent = $rows[$j]['continent'];
      echo 
      "<table><tbody><tr id='$id'>
<td><input type='checkbox' /></td>
<td>$firstname</td>
<td>$lastname</td>
<td>$city</td>
<td>$continent</td>
</tr></tbody></table>";
}
?>
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