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hi can anyone help me with this? i really had a hard time putting my if statement in this code

<select name="date_opened_year">
<?php 
define('DOB_YEAR_START', 1962);
$current_year = date('Y');

for ($count = $current_year; $count >= DOB_YEAR_START; $count--)
{
    echo "<option value='{$count}'>{$count}</option>";
}
?>
</select>

and i have here a code where i had put my if statement

<select name="date_opened_year">
<?php 
define('DOB_YEAR_START', 1962);
$current_year = date('Y');

for ($count = $current_year; $count >= DOB_YEAR_START; $count--)
{
    echo "<option value='{$count}' if($yy == $count) echo 'selected'>{$count}</option>";
}
?>
</select>

$yy = 2003 well it comes from a query in the database and when i look at the code it gives me something like this

<option 'selected'="" echo="" 2012)="" if(2003="=" value="2012">2012</option>

why is that? can anyone revise the code? thanks

share|improve this question
    
$yy looks like it's undefined. What value is it supposed to be? –  diggersworld Nov 25 '12 at 6:43
    
PHP code does not get evaluated like that. Try printf('<option value="%s" %s>%s</option>', $count, ($yy == $count) ? 'selected' : '', $count). –  DCoder Nov 25 '12 at 6:44
    
like i said diggers $yy = 2003 <-- the data comes from a query –  Louie Jay Jayme Nov 25 '12 at 6:45
    
there we go thanks DCoder :) why don't you post the answer so i can accept that ^^ –  Louie Jay Jayme Nov 25 '12 at 6:47

3 Answers 3

up vote 3 down vote accepted

try this:

$selectStr = ($yy == $count) ? 'selected': '';
echo "<option value='".$count."' ".$selectStr.">".$count."</option>";

Best to break it up.

You've got your if inside a string creation double quote.

share|improve this answer
    
thanks this one works well so a +1 for ya :) –  Louie Jay Jayme Nov 25 '12 at 6:52
    
No problem @LouieJayJayme :) –  bear Nov 25 '12 at 7:03

do this:

if($yy == $count){ 
   echo "<option value='{$count}' selected='selected'>{$count}</option>";
}
share|improve this answer
    
hmm this is okay doniyor but it will destroy the other data like only 2003 with display and not 2002,2001 or 2004 2005 and so on.. but its a good one thanks :) –  Louie Jay Jayme Nov 25 '12 at 6:51
    
of course you will wrap it with for loop as you did above –  doniyor Nov 25 '12 at 7:08

Echo will not evaluate if statement. Try @DCoder solution with printf or this:

echo "<option value='{$count}'";
if($yy == $count) echo 'selected';
echo ">{$count}</option>";
share|improve this answer
    
yes i tried DCoder's solution it works best :) –  Louie Jay Jayme Nov 25 '12 at 6:54

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