Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →
<table><tr>
<?php
             for($i=0;$i<15;$i++) {

                if($i%5 == 0) {echo '</tr> <tr>';}
                ?><td><?php echo $i ?></td> 

            <?php
            }?>
                </tr>
</table>

this generate:

0   1   2   3   4
5   6   7   8   9
10  11  12  13  14

how can i make:

0 3 6 9  12
1 4 7 10 13
2 5 8 11 14

?

share|improve this question
up vote 1 down vote accepted

Tested example with given start and end:

<table>
<?php
$start = 1300;
$end = 1432;
$n = $end - $start + 1;
$cols = 5;
$rows = ceil($n / $cols);

for($i=0 ; $i < $rows ; $i++ ) {
    echo "<tr>";
    for( $j = 0 ; $j < $cols ; $j++ ) { 
        $val = $j * $rows + $i;
        echo "<td>";
        echo ($val < $n) ? $val + $start : '&nbsp;'; 
        echo "</td>";
    }
    echo "</tr>";
}
?>
</table>
share|improve this answer
    
thanks, but how can i set for example (1300-1432) instead (0-15) ? – Billy Sodry Aug 2 '11 at 12:35
    
Very roughly: Change $n = 15; to $n = 1432 - 1300; Change echo ($val < $n) ? $val : '&nbsp;'; to echo ($val < $n) ? $val + 1300 : '&nbsp;'; – vaidas Aug 2 '11 at 12:42
    
@Billy - check out my answer, I put in an optional starting number – Peter Ajtai Aug 2 '11 at 12:47
    
Example updated to give you start and end. – vaidas Aug 2 '11 at 12:51

You need a nested loop

<table>
    <?php
    $rows = 3;
    for($i=0 ; $i < $rows ; $i++ ) {
        echo "<tr>";
        for( $j = 0 ; $j < 5 ; $j++ ) { 
            echo "<td>" . ($j * $rows + $i) . "</td>";
        }
        echo "</tr>";
    }
    ?>
</table>
share|improve this answer
    
thanks, but how can i set for example (1300-1432) instead (0-15) ? – Billy Sodry Aug 2 '11 at 12:35

I tried to make the variable names descriptive:

<table>
<?php
// Set the number of rows, cols, and starting number here:
$number_rows = 3;
$number_cols = 5;
$starting_num = 0;

// You can use foreach w arrays... much easier
$rows    = range(0,$number_rows - 1);
$cols    = range(0,$number_cols - 1);

foreach($rows as $one_row) {
?>
    <tr>
    <?php
    foreach($cols as $one_col) {

        // Do the calculation
        echo "<td>" . 
             ($starting_num + $one_col + ( max($rows) * $one_col ) + $one_row) .
             "</td>";
    }
    ?>
    </tr>
<?php
}
?>
</table>

Working example like in the OP.

Now let's say you want to go from (1300-1431), then you start at 1300 and want a 4 x 8.

$number_rows  = 8;
$number_cols  = 4;
$starting_num = 1300;

Like this.

There are two "tricks."

The first is using range() to quickly define an array integers. I find arrays more pleasant to work with than raw numbers, since arrays can be worked on with the intuitive construct of foreach().

The second is figuring out how to know what number to print if you have the column, row, and starting, number. It's simplest to figure out the numbers for the first row and go from there. Let's number the rows and cols from 0. So col:0 row:0 will be the starting number. Col:1 Row:0, the number to the right, will just be the starting number + one (the column number) + the number of rows less one (easiest to see by looking at the matrix of number), and the number of rows less one is the maximum number in the rows array. So for the first row we have:

$starting_num + $one_col + ( max($rows) * $one_col )

then all we just add the row number to take that into account, and we've got it all:

$starting_num + $one_col + ( max($rows) * $one_col ) + $one_row
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.