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.

This is my last question

Data can not be intered to Database PHP

I did some changes in both; the pages that has the text boxes and the action page.

In the first page, I made the text boxes have different names with each loop:

$count1=100;
$count2=200;
$count3=300;
$count4=400;

echo "<form action='ConfirmEnter.php' method='post'>";
echo "<table border cellpadding=3>"; 
echo "<tr>"; 
echo "<th>ID</th>";
echo "<th>MidTerm</th>"; 
echo "<th>Project</th>"; 
echo "<th>Final</th>";
echo "<th>Total</th>". "</tr>";

while($row1 = mysql_fetch_array($result1)) 
{ 
echo "<tr>";
echo "<td><input name='".$count1."' readonly='readonly' value='". $row1['ID'] ."'  size=5/></td> "; 
echo "<td><input type='text' name='".$count2."' size=5 value='0.0' /></td>";
echo "<td><input type='text' name='".$count3."' size=5 value='0.0' /></td>";
echo "<td><input type='text' name='".$count4."' size=5 value='0.0' /></td>";
echo "</tr>";
$count1++;
$count2++;
$count3++;
$count4++;
} 
echo "</table>"; 
echo "<input type='submit' value='Submit' />";
echo "</form>"; 

In the action page:

$count=1;
$count1=100;
$count2=200;
$count3=300;
$count4=400;

function addtwo($a = 0.0 , $b = 0.0 , $c = 0.0)
   {
          return ($a + $b + $c);
   }

while($row1 = mysql_fetch_array($result1)) 
 { 
  $id[$count] = $_POST['$count1'];
  $mt[$count] = $_POST['$count2'];
  $pr[$count] = $_POST['$count3'];
  $fi = $_POST['$count4'];
  $tot[$count] = addtwo($mt[$count]+$pr[$count]+$fi);
  echo $fi;
  mysql_query("INSERT INTO Marks (ID, Name, MidTerm, Project, Final, Total)
  VALUES ('$id[$count]', 'EMPTY', '$mt[$count]', '$pr[$count]', '$fi', '$tot[$count]')");
  $count++;
  $count1++;
  $count2++;
  $count3++;
  $count4++;
  }

The problem is still the same. The data can not be inserted to the database. I tested each line by print it using echo statement and I finaaly discovered that when I print the statements of $_POST it doesn't print anything ( as you can see in the code there is echo $fi)

share|improve this question

1 Answer 1

I would guess that ID is defined as key, so you can't insert another row with the same ID. When my guess is right, use INSERT....ON DUPLICATE KEY UPDATE

But however, whenever an INSERT fails, mysql_error() can tell you why, so you should ask it.

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.