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.

The code below won't work because of this line $params=array($data);. It needs something other than $data. Or it needs something to happen with $data prior to this line.

If the line is written as $params=array("A", "B", "C", "D"); then it works great, but my array is in the $data variable, not written out like that. If there is a way to get the array converted to being written out like that, that would work too.

The end result should show every possible combination (not permutation) of the contents of the array. Like in the example above it shows ABC, BD, etc.

$data = mysql_query('SELECT weight FROM my_table WHERE session_id = "' . session_id() . '"'); 

$params=array($data);

$combinations=getCombinations($params);
function getCombinations($array)
{
    $length=sizeof($array);
    $combocount=pow(2,$length);
for ($i=1; $i<$combocount; $i++)
    {

$binary = str_pad(decbin($i), $length, "0", STR_PAD_LEFT);
        $combination='';
        for($j=0;$j<$length;$j++)
        {
            if($binary[$j]=="1")
                $combination.=$array[$j];
        }
        $combinationsarray[]=$combination;
        echo $combination."&lt;br&gt;";
    }
    return $combinationsarray;
} 
share|improve this question
add comment

3 Answers

up vote 0 down vote accepted

mysql_query() only returns a result resource ID. To retrieve data, you must use one of the "fetch" commands, for example

$params = array();
while ($row = mysql_fetch_assoc($data)) {
    $params[] = $row['weight'];
}

Also, your query is possibly vulnerable to SQL injection. I wouldn't implicitly trust the value from session_id(). I'm not entirely sure of this but it may simply retrieve the value from the session cookie.

At the very least, sanitise the value with mysql_real_escape_string(). A more robust solution which would bring your code out of the dark ages would be to use PDO and parameter binding.

share|improve this answer
    
thanks it works! –  arrays_argh Sep 1 '11 at 5:56
add comment

$data is not an array. Assuming mysql_query() did not return an error or an empty result (both of which you should check for, by the way--lookup documentation for mysql_error() and mysql_num_rows() perhaps, maybe some others), $data is a resource.

So you want $params=mysql_fetch_array($data) to make it an array. (That assumes that there is only one result. If it might return more than one row, you'll probably want to wrap it in a loop. If you are 100% certain that session_id is unique , then you can get away without the loop, I suppose. You can also get away without the loop if you only care about the first result in a multi-row result, although I'd throw in a LIMIT 1 in your query in that case to improve performance.)

There are lots of options (do you want a numerically indexed array, or one where they keys are the names of the columns, etc.) so read up at http://www.php.net/manual/en/function.mysql-fetch-array.php.

share|improve this answer
    
Here is what I am trying to do on this page. sonyjose.in/blog/?p=62 I want to get the array from mysql instead of writing out the array manually. A lot of times there is more than 1 row but sometimes only 1 or 0 rows. –  arrays_argh Sep 1 '11 at 0:37
add comment

Ok there are alot of fundamental problems with your script. I personally recommend to first read this article and then about the actual function called mysql_fetch_array().

Simply put, what you are receiving from mysql is resource (corrent me if i'm wrong!) and you have to fetch array on that.

$params = mysql_fetch_array($data);

PS: This makes no sense: $params=array($data);

share|improve this answer
add comment

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.