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i want to create a multiple step form, but i am now having problem with displayStep1(). please help me to find out my problem and to solve. thanx to all.

Fatal error: Call to undefined function displayStep1()

 if ( isset( $_POST["up_login"] ) and $_POST["up_login"] == 'up_login' )
 {
     include 'forms/up_login.php';
 } 
 elseif ( isset( $_POST["up_info"] ) and $_POST["up_info"] == 'up_info' )
 {

    if ( isset( $_POST["step"] ) and $_POST["step"] >= 1 and $_POST["step"]<= 5 ) 
    {
        call_user_func( "processStep" . (int)$_POST["step"] );
    } 
    else 
    {
        displayStep1();
    }

    function processStep1() 
    {
        displayStep2();
    }
    function processStep2() 
    {
        if ( isset( $_POST["continue"] ) and $_POST["continue"] =="< Back" ) 
        {
            displayStep1();
        } 
        else 
        {
            displayStep3();
        }
    }
    function processStep3() 
    {
        if ( isset( $_POST["continue"] ) and $_POST["continue"] =="< Back" ) 
        {
            displayStep2();
        } 
        else 
        {
            displayComplete();
        }
    }
    function processStep4() 
    {
        if ( isset( $_POST["complete"] ) and $_POST["complete"] =="< Back" ) 
        {
            displayStep3();
        } 
        else 
        {
            displaySuccess();
        }
    }

    function displayStep1() 
    {

     include 'update_step1.php';            

    }
    function displayStep2() 
    {

     include 'update_step2.php';            

    }
    function displayStep3() 
    {

     include 'update_step3.php';            

    }
    function displayComplete() 
    {

     include 'update_step4.php';            

    }
    function displaySuccess() 
    {

     include 'update_step1.php';            

    }

 }
 else
 {
     include 'forms/up_account.php';
 }
share|improve this question
1  
keep your function outside from if-else statements. –  Rajeev Ranjan Jun 20 '13 at 5:57
1  
i really think there is lot lot better way to do this instead your code –  NullPoiиteя Jun 20 '13 at 5:58
    
@NullPoiиteя, please can you show me how? and now i am having another problem with this code, when i am in update_step1.php, then click on the submit button goes back to up_account.php. i am using <input type="hidden" name="step" value="1" /> in update_step1.php and <input type="hidden" name="step" value="2" /> in update_step2.php to create a form wizerd. –  Muhammad Farhad Jun 20 '13 at 7:27

2 Answers 2

up vote 0 down vote accepted

This function:-

function displayStep1() 
    {

     include 'update_step1.php';            

    }

should be placed before it is called.

share|improve this answer
    
thanx, vivek, i will try this now. –  Muhammad Farhad Jun 20 '13 at 6:00
1  
thank you so much vivek, its work. –  Muhammad Farhad Jun 20 '13 at 6:01
    
@Muhammad Farhad You're Welcome. If you find any answer useful please consider accepting that answer. :) –  Vivek Sadh Jun 20 '13 at 6:02
    
Please do yourself and the next person looking at your code a favour and do not define functions inside a block of if statements. First, define your functions before beginning the if statements. It's just that it's a lot cleaner and will help prevent bugs like this. –  Edward Williams Jun 20 '13 at 6:03
1  
Functions must be declared before they can be called. You will have the same bug with displayStep3(). –  Edward Williams Jun 20 '13 at 6:05

Put your functions out from IF, your don't need create a function into the if, eg:

First:

function displayStep1(){/* ... */} 

After, continue with the code.

Make this for your all functions.

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