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I have a database loaded with different churches information, I am trying to insert all the information from the database into a php table with 3 rows.

I would like the structure of each cell to be: Church Name Image Pastor Name

I can easily insert all data into a table, but I cannot get it to display as 3 rows.

echo("<table>");
while($row = mysql_fetch_array($rs))
{
        echo("<tr>");
        echo("<td>");
        echo("<a href='" . $row['website'] . "'>" . $row['churchName'] . "</a><br>");
        echo("<img src=\"" . $row['image'] . "\"><br>");
        echo($row['pastorName'] . "<br><br>");
        echo("</td>");
        echo("<td>");
        echo("<a href='" . $row['website'] . "'>" . $row['churchName'] . "</a><br>");
        echo("<img src=\"" . $row['image'] . "\"><br>");
        echo($row['pastorName'] . "<br><br>");
        echo("</td>");echo("<td>");
        echo("<a href='" . $row['website'] . "'>" . $row['churchName'] . "</a><br>");
        echo("<img src=\"" . $row['image'] . "\"><br>");
        echo($row['pastorName'] . "<br><br>");
        echo("</td>");
        echo("</tr>");

}
echo("</table>");

Doing this causes me to have 3 rows in correct structure, but having duplicate data. I understand that I have not changed the id, but am not sure what I should do

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Please, don't use mysql_* functions for new code. They are no longer maintained and community has begun the deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide, this article will help to choose. If you care to learn, here is good PDO tutorial. –  tereško Jun 11 '12 at 13:57
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3 Answers

up vote 1 down vote accepted

You're repeating the data on the row. If you want to show 3 items per row, you need to add a counter and a statement to draw the table row breaks, as below:

$int_Col = 1;
echo("<table>");
while($row = mysql_fetch_array($rs))
{
    if ($int_Col == 1) {
       echo("<tr>");
    }

    echo("<td>");
    echo("<a href='" . $row['website'] . "'>" . $row['churchName'] . "</a><br>");
    echo("<img src=\"" . $row['image'] . "\"><br>");
    echo($row['pastorName'] . "<br><br>");
    echo("</td>");

    if ($int_Col == 3) { 
        echo("</tr>");
        $int_Col = 1;
    } else {
      $int_Col++;
    }
}

if ($int_Col > 1) { 
   echo("<td colspan='". (3 - $int_Col) ."'>&nbsp;</td></tr>");
}
echo("</table>");

The last check ($int_Col > 1) should ensure the table is rendered properly with an empty cell - should span the correct amount of cells that were not drawn on the current row.

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1  
Thanks so much, that solution worked great, I had tried something very similar earlier, but neglected to add the last $int_Col –  Lemuel Botha Jun 11 '12 at 10:43
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Just clarify, I think there's two definitions of "rows" here.

  • MySQL table rows
  • HTML table rows

I believe you're after getting 3 MySQL table rows into one HTML table row.

Use the following to split the HTML row every 3 MySQL rows:

$i = 0;
while($row = mysql_fetch_array($rs))
{
    // whatever you're already doing(ish)

    $i++;
    if($i % 3 == 0)
    {
         echo('</tr><tr>');
    }
}

You'll need to put some extra checks in in the event that the total number of MySQL rows doesn't divide exactly by 3 because in that case you'll have one or two empty cells to fill at the end of the table.

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If I get your code right you are creating 3 rows for every row in the database. mysq_fetch will run the loop for every single row, so the right content of the loop would be:

    echo("<tr>");
    echo("<td>");
    echo("<a href='" . $row['website'] . "'>" . $row['churchName'] . "</a><br>");
    echo("<img src=\"" . $row['image'] . "\"><br>");
    echo($row['pastorName'] . "<br><br>");
    echo("</td>");
    echo("</tr>");
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