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I want user to enter his birthday from dropdown menu during registration.I searched for code and got this

    <tr>
      <td><label>Birthday:</label></td>
      <td>
        <div class="input-container">
        <select name="month"><option value="0">Month:</option><?=generate_options(1,12,'callback_month')?></select>
        <select name="day"><option value="0">Day:</option><?=generate_options(1,31)?></select>
        <select name="year"><option value="0">Year:</option><?=generate_options(date('Y'),1900)?></select>
        </div>
      </td>
    </tr>

But this code is not working.Please show some error or provide with better dropdown menu code.

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1  
better to use Jquery datepicker for date selection –  Naresh Pansuriya Nov 17 '12 at 6:12

2 Answers 2

up vote 1 down vote accepted

It could be that short_open_tag is disabled on your PHP setup. instead of

 <?= generate_options(

you might need to code as

<?php
 echo generate_options(

then next step, We still need to know what error your page is showing. try this code on a new file called index2.php

<?php
    error_reporting(E_ALL);
    define('INCLUDE_CHECK',1);
    require "functions.php";
?>
<html>
<body>
    <?=generate_options(1,12,'callback_month')?>

below this are previous answers...

What error did you get? if its undefined function generate_options , then you'll need to add that function in your page.

Can you supply more detail so we can answer this? Can you also mention the page you took it from?

if you got it from here http://tutorialzine.com/2009/08/creating-a-facebook-like-registration-form-with-jquery/ You'll need to copy the PHP code from that page as well.


You'll need to add the php code either on top or at the bottom of the page.

<?php
    function generate_options($from,$to,$callback=false)
{
    $reverse=false;

    if($from>$to)
    {
        $tmp=$from;
        $from=$to;
        $to=$tmp;

        $reverse=true;
    }
  ......
?>
share|improve this answer
    
Yes it is facebook-like-registration and I have all the related code to it. Problem : It do not show any sort of error,but their is no values shown in drop down menu. –  user1814913 Nov 17 '12 at 6:33
    
it wont show the error because it is inside the <select tag, if you view-source the page, you'll see the errors there. –  fedmich Nov 17 '12 at 6:34
    
:Thanks for reply. Here is link to zip file "sendspace.com/file/0hey8j";. I can't find any error in page-source.If u wanna see. –  user1814913 Nov 17 '12 at 6:47
    
I just tried it, and it works. i.imgur.com/CKNGb.png What problem are you having anyway? is the dropdown showing on your end? –  fedmich Nov 17 '12 at 6:52
1  
SOLVED : Problem was short_open_tag .Thanks a lot. –  user1814913 Nov 17 '12 at 11:12

generate_options is not internal PHP function. For fix this code you should find definition of this function and insert it to your code

share|improve this answer
    
yes it is not internal Php function.Its user created function.Now the problem is same code is working on different system butnot on mine. sendspace.com/file/0hey8j here it is, if you wanna check –  user1814913 Nov 17 '12 at 7:21

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