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I trying to load data from mysql db as a default value on e textbox. The problem that im getting is that in the textbox wont appear the complete data just the first Word. For example what it should print on the text box is "'Teatro Romano Sagunt (Calle del Castillo)" and im getting just "Teatro". My code is (ignore the wrong spaces in the label tags i put them cos otherwise that part of the code wasnt vivible in the forum):

< label for="lugar">- Lugar < /label> < input name="lugar" type="text" id="lugar")

      if (!empty($_POST['modify_id']))
      {
      $id= $_POST['modify_id'];

        if(!($conexion= mysql_connect('xxx','xxx','xxx)))
            {
                echo 'error';
                exit();
            }
        else
            {
                $conexion= mysql_connect('xxx','xxx','xxx');
                mysql_select_db('blabla',$conexion);
                $ssql = "select * from algo WHERE `id` LIKE $id";
                $rs = mysql_query($ssql);
                while ($row = mysql_fetch_array ($rs)) 
                {
                    echo 'value='.$row[lugar].' />';
                }

            }
      }
        ?>
share|improve this question
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 They are no longer maintained and are officially deprecated.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. – ThiefMaster Aug 19 '13 at 12:23
    
Besides that, your code contains syntax errors and makes not very much sense - for example, why do you connect to your database twice?! – ThiefMaster Aug 19 '13 at 12:24
up vote 0 down vote accepted

First of all there is syntax error in your code.

Replace

 if(!($conexion= mysql_connect('xxx','xxx','xxx)))

With

 if(!($conexion= mysql_connect('xxx','xxx','xxx'))) / you for `'` here.
share|improve this answer
    
thanks i correct that! – Mathias Di Menza Aug 19 '13 at 12:38
    
Thanks...this is the code now (working) if (!empty($_POST['modify_id'])) { $id= $_POST['modify_id']; $conexion= mysql_connect('xxx','xxx','xxx'); mysql_select_db('blabla',$conexion); $ssql = "select * from algo WHERE id LIKE $id"; $rs = mysql_query($ssql); while ($row = mysql_fetch_array ($rs)) { echo "<label for='lugar'>- Lugar</label> <input name='lugar' type='text' id='lugar' value='$row[lugar]' />"; } } else echo "<label for='lugar'>- Lugar</label> <input name= – Mathias Di Menza Aug 19 '13 at 12:40

your echo statement should be like this

 echo '<input type="text" name="your_name_val" value="'.$row[lugar].'" />';

or you can use like this

 $value = $row[lugar];

echo '<input type="text" name="your_name_val" value="'.$value.'" />';
share|improve this answer
    
Thanks, i fix it like that! – Mathias Di Menza Aug 19 '13 at 12:38

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