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The reason this is complicated (for me) is that each column of the table is loaded from a separate MySQL table, and each MySQL table will have varying number of records. Initially I thought I could start generating the html table from top-left to bottom-right column by column , cell by cell, but this won't work because each MySQL table will have different length of records, which generate malformed html tables. Do you have any suggestions?

My idea so far:

  • Get a list of all tables in MySQL, which determine the number of columns
  • Get the count from the table with most records
  • Create a table with the parameters (# of tables as columns, max# as rows
  • Update each cell with the corresponding record, but not quite sure how

As requested, some code:

$tables = mysql_query("show tables");

$output = "<table border=1><thead><tr>";

while($table = mysql_fetch_array($tables)) {

$output .= "<td>";
$output .= $table[0];
$output .= "</td>";
$tableNames[] = $table[0];

}

$output .= "</tr></thead>";
$output .= "<tbody>";

//Get a count of the table with the most records
for($i=0; $i<count($tableNames); $i++ ){

    $currentTable = $tableNames[$i];

    $tableContent = mysql_query("select * from $currentTable") or die("Error: ".mysql_error());

    //Generating all content for a column
    $output .= "<tr>";

    while($content = mysql_fetch_array($tableContent)){

        //generating a cell in the column
        $output .= "<td>";
        $output .= "<strong>".$content['subtheme'].": </strong>";
        $output .= $content['content'];
        $output .= "</td>";

    }

    $output .= "</tr>";

}

$output .= "</tbody>";
$output .= "</table>";

This is wrong not just because it generates a malformed table, but also because it transposed columns to rows...

Any help would be appreciated

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2  
We need Code to help you –  Momo1987 Aug 12 '13 at 20:46
1  
Are the results not able to joined in a MySQL query? –  Liam Sorsby Aug 12 '13 at 20:48
1  
you kinda trailed off before you finished the third bullet point –  Orangepill Aug 12 '13 at 20:50
    
Please be more clear in what you exactly want to do. How would you know which row from one table fits with which rows from the other tables? –  Tomas Creemers Aug 12 '13 at 20:51
    
It sounds like you need to decide how you want to organize your data in the table - then you can work on the implementation. –  Surreal Dreams Aug 12 '13 at 20:52

1 Answer 1

up vote 1 down vote accepted

Solution to my much hated question:

$mymax = 0;
for($i=0; $i<count($tableNames); $i++){
    $currentTable = $tableNames[$i];
    $tableCounts = "select * from $currentTable";

    if($stmt = $mysqli->prepare($tableCounts)){

        mysqli_stmt_execute($stmt);
        mysqli_stmt_store_result($stmt);
        $count = mysqli_stmt_num_rows($stmt);
        mysqli_stmt_close($stmt);

    }   
    ($mymax >= $count ? "" : $mymax = $count);

    $colWidth = 100 / count($tableNames);   
}

// DIV GRID
// via DIV GENERATION
$output .= "<div class='grid'>";
for ($i=0; $i<count($tableNames); $i++){
    $output .= "<div id='col$i' class='col' style=\"width:$colWidth%\">";
    $output .= "<h3>".$tableNames[$i]."</h3>";

    $tableqry = "select * from $tableNames[$i]";

    if ($result = mysqli_query($mysqli, $tableqry)) {

        while($row = mysqli_fetch_array($result, MYSQLI_ASSOC)){

            $output .= "<div class='item'>".$row["content"]."</div>";

        }

        mysqli_free_result($result);

    }

    $output .= "</div>";

}

$output .="</div>";

$output .="<div class='clear'></div>";
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