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I have a problem in creating variable in a loop and accessing third variable value, i did try many way but now i don't know how to do that.... the code is..

$rand_1 =       random_username($_POST['txtuser_name']);
$rand_2 =       random_username($_POST['txtuser_name']);
$rand_3 =       random_username($_POST['txtuser_name']);

$username   =   "";

for($i=1; $i<=3; ++$i){
   $name   =    "rand_".$i;
   $username .= $name."<br />";
}

echo $username;

Any suggestion.....

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2 Answers 2

up vote 3 down vote accepted

Try $$name, which is a variable variable.

Still, when you see var_1 etc, generally it means you should be using an array.

Then you could make your code...

$rand = array();

foreach(range(0, 2) as $index) {
    $rand[] = random_username($_POST['txtuser_name']);
}

$username = join('<br />', $rand) . '<br />'; 
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i've never seen this foreach format before –  Ibu May 11 '11 at 5:42
    
@Ibu Just an easier way to loop through numbers than with a normal for loop. –  alex May 11 '11 at 5:44
    
@alec, the first one so easy,, just double $.. and work fine, thanks... –  ime May 11 '11 at 5:47

use $username .= $$name."<br />"; instead of $username .= $name."<br />";

But better approach may be

$user=array();

for($i=1; $i<=3; ++$i){
   $user[] =  random_username($_POST['txtuser_name']);
}

echo implode("<br/>", $user)."<br />";
share|improve this answer
    
its all work with $$name,, and the second method is also good. –  ime May 11 '11 at 5:50
    
Your better approach won't produce the same output as the OP's code. –  alex May 11 '11 at 5:51
    
@lex, hey man you both are right but in loop i also want to check in db. so thats why it is not perfect to implode or join all username, but simply check in loop if not exist in d.b then join with username otherwise go next....so $query1 = "select count(*) from member_details where username ='".$$name."'"; $nameCount = dbQuery($query1, 'count'); if($nameCount==0){ $username .= $$name."<br />"; } –  ime May 11 '11 at 6:26

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