Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm a beginner with PHP and mySQL and I'm using it for my project. I sort of have a problem with my query.

This is my code:

    $doctname = mysql_query("SELECT name_of_doctor FROM {$table} WHERE department_no = '{$_REQUEST['deptno']}'");
    $doctnamerow = mysql_fetch_row($doctname);

    do
    {
        foreach ($doctnamerow as $cell)
        {
            $doctnamerowvalue = $cell;
        }
    } while ($doctnamerow = mysql_fetch_row($doctname));

So the problem I have is that if the doctor's name has a space between it (e.g "AJ Ramos") then it seems to skip the space and just returns "AJ" and not the surname. How do I do this? Thanks =)

edit:

Silly me, It was just an error with my code, I was using $doctnamerowvalue as a value=$doctnamerow for one of my text boxes and forgot to put double quotes, which resulted in value=doctor name and not value="doctor name". Sorry

share|improve this question
5  
?deptno='; DROP TABLE doctors;-- –  Vlad Preda Sep 6 '13 at 13:50
    
How did you determine that your return value is truncated (please show the code). Also, what's the point of your foreach loop? –  RandomSeed Sep 6 '13 at 13:51
    
What's your table structure? –  sємsєм Sep 6 '13 at 13:55
    
@RandomSeed thank you for reminding me to determine if my return value is truncated. It was simply an error with my syntax. I was using $doctnamerowvalue as a value for one of my text boxes, and forgot to put double quotes which resulted in value=doctor name and not value="doctor name". Thank you! –  Timothy Buensuceso Sep 6 '13 at 14:00

3 Answers 3

Flash Code Review:

  • mysql_* is deprecated. Use MySQLi or PDO.
  • Your code is wide open to SQL injection
  • $doctornamerowvalue is overwritten on every iteration
  • the foreach you are doing is pointless.
  • variable names are poorly chosen.

Here it is refactored:

// do these in a config file !!!
$db = new PDO('mysql:dbname=' . DB_NAME . ';host=localhost', DB_USER, DB_PASS);
$db->setAttribute(PDO::ATTR_DEFAULT_FETCH_MODE, PDO::FETCH_ASSOC); // if you want to use associative arrays

// here is the refactored code
$query = "SELECT name_of_doctor FROM `{$table}` WHERE department_no = :deptno";

$stmt = $db->prepare($query);
$stmt->execute(array(':deptno' => $_REQUEST['deptno']));
$doctors = $stmt->fetchAll();

foreach ($doctors as $doctor) {
     echo $doctor['name_of_doctor'] . '<br>';
}

Related to your 'bug'

  • Check the table structure and data. It's possible that the field contains only the surname, and there is another field that contains the name.
  • Check the table length - maybe it's too small, so the string is truncated.
share|improve this answer

try this:

$sql = "your sql syntax";
$result = mysql_query($sql);

$array_of_things = array();

while ($row = mysql_fetch_array($result)) {
    $array_of_things[] = $row['table_column_name'];
}

foreach($array_of_things as $val) {
    echo $val; 
}
share|improve this answer

used this :

$doctname = mysql_query("SELECT name_of_doctor FROM {$table} WHERE department_no = '{$_REQUEST['deptno']}'");
$doctnamerow = mysql_fetch_row($doctname);


while ($raw = mysql_fetch_row($doctname)) {
echo $raw['name_of_doctor'];
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.