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$i=0;
while (db_data) {
$i++;
echo '<input type="checkbox" name="v['.$i.']" value="'.$url.'"';
if ($v[$i]) {
  echo ' checked';
  $s .= $url;
}
echo '/>';

}

I have the above array of checkboxes. It worked on my pc, but not on the server; it seems like the confusing part is on $v[$i].

$v is not defined, but sure used no where else. the problem is my checkbox selection never restored, and code never get into the if statement.

however, if i add the following, i can see the value. just the checkbox lost after the processing $v=$_POST['v']; while (list ($key,$val) = @each ($v)) { $x .= ' 11*'.$key.'-'.$val.'*22 '; }

my goal is to preserve the checkbox checked on the form, and i need the $s elsewhere. any solution to replace $v[$i]?

Can anybody help me fix this? Thank you.

share|improve this question
    
Did you copy/paste this incorrectly? –  Nils Luxton May 16 '11 at 18:48
    
huh ? sorry but there isn't enough to go on here could you please elaborate ? –  mcgrailm May 16 '11 at 18:49
4  
Where are $v and $i defined? Your code sample is obviously incomplete. –  Marc B May 16 '11 at 18:49
    
Please add what you expect to see and what you actually see. –  Mel May 16 '11 at 18:52

3 Answers 3

up vote 0 down vote accepted

The issue seems to be $v = $_POST. If you are just doing that then your conditional statement would need to be

if ($v['v'][$i]) {
   ///Checkbox
}

or just do $v = $_POST['v'].

Sorry, ignore above as you did mention you did that part. See below.

Here is working code.

<form action="" method="post">
<?php
$v = $_POST['v'];
$i=0;
while ($i < 4) {
    $i++;
    $url = "test.com/".$i;
    echo '<input type="checkbox" name="v['.$i.']" value="'.$url.'"';
    if ($v[$i]) {  
        echo ' checked="checked"';  
        $s .= $url;
    }
    echo '/> '.$url.'<br />';
}
?>
<input type="submit" name="submit" value="submit" />
</form>

I left the code pretty much the same to show you where you went wrong, but you should be checking the $_POST variable for exploits before using. If I were doing this as well, I would use a for count, but it's setup as a placeholder for your database code. Make sure that $url gets populated as well.

You could also do away with the $i variable like:

<?php
$v = $_POST['v'];
while (db_data) {
    echo '<input type="checkbox" name="v[]" value="'.$url.'"';
    if (is_array($v)) {
         if (in_array($url,$v)) {  
              echo ' checked="checked"';  
              $s .= $url;
         }
    }
    echo '/> '.$url.'<br />';
}
?>
share|improve this answer
    
it rocks! the best help i got! you guys are great! –  jon May 18 '11 at 17:31

Try to print_r($_POST) and then print_r($v) and see if anything comes up. If the $_POST works, then you know that it is being posted back to the page correctly. Then if the $v is working, then you know you set $v = $_POST correctly. Due to the fact that you don't actually give us any information on the db_data, I assume this is working correctly and displaying all the checkboxes on first load, so as long as it is posted and you are setting the $v variable, it should be working.

A side note is that you should validate the $_POST variables before using, but do that after you get things working.

share|improve this answer
    
If you do what FatherStorm said above (I can't comment on it I guess because of being a new user), then you need to use is_array and in_array, which may work out better anyways. –  fanfavorite May 16 '11 at 20:58
    
i know the _POST is working, since the while loop worked. the problem is the checked box is lost immediately –  jon May 16 '11 at 21:33

change

name="v['.$i.']"

to

name="v[]"

the fact that PHP picks that up as an array is a unintended feature of PHP that wasn't intentionally designed. you don't need to set the indexes, just define it as an array.

share|improve this answer
    
no, i have to set the index, otherwise, it will store as the v0, v1, v2...in order, no matter what stuff i choose. –  jon May 16 '11 at 20:57

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