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Can't seem to make this work.

I want to make the array below available to a second function but it always comes up empty

The main code is this:

function GenerateSitemap($params = array()) {          

$array = extract(shortcode_atts(array(                         
'title' => 'Site map',                         
'id'    => 'sitemap',                         
'depth' => 2                         
), $params));                                  

global $array; 

}  


function secondfunction()

{
global $array; 

print $title;

// this function throws an error and can't access the $title key from the first function
}

GenerateSitemap()

secondfunction()

I'd like to use the title, id or depth KEYS inside a second function. They just come up empty and throw an error

share|improve this question
    
how are you calling it? Have you used print_r($your_array); to see the output and make sure that the array is being written to? –  Zak Dec 31 '12 at 21:34
    
print $title should read print $array['title'] - like you say in the comment... you are accessing the title "key" from array. (Calling a variable "array" is confusing.) –  w3d Dec 31 '12 at 22:16
    
Aside... why aren't you calling GenerateSitemap() from inside your secondfunction() and avoiding the need for a global variable? –  w3d Dec 31 '12 at 22:24
    
Your code has several problems. Semicolons are not optional in PHP. You must make a variable global before you set it's value. What does the function shortcode_atts return? The extraction does not make the $title variable global, only the $array variable. –  dfmiller Jan 8 '13 at 16:35

2 Answers 2

"The scope of a variable is the context within which it is defined."

http://us3.php.net/language.variables.scope.php

You need to define the variable (at least initially) outside the function:

   $array = array();

    function GenerateSitemap($params = array()) {          
       global $array; 
       $array = extract(shortcode_atts(array(                         
          'title' => 'Site map',                         
         'id'    => 'sitemap',                         
         'depth' => 2                         
      ), $params));                                  
   }  

   function SecondFunction() {          
       global $array; 
       ...
   }
share|improve this answer
1  
and define it as global in the function BEFORE you do anything with it, otherwise you're just playing with a local copy which'll get replaced with the global version. –  Marc B Dec 31 '12 at 21:41
    
You don't need to define the variable outside the function, declaring it as global inside the function is enough. –  w3d Dec 31 '12 at 21:48
    
If you test that code it simply doesn't work. You'll be able to access the GenerateSitemap function but the SecondFunction() will throw an error when you access it Parse error: syntax error, unexpected T_STRING, which is my problem in the first place. –  omar Dec 31 '12 at 21:54
    
@omar: The Parse error: syntax error, unexpected T_STRING is not as a result of calling the above code. Another part of your code is generating that error. –  w3d Dec 31 '12 at 22:30

You need to declare the variable as global before you use it inside the function, otherwise it will implicitly create a local variable.

function myFunc() {
    global $myVar;
    $myVar = 'Hello World';
}

myFunc();
print_r($myVar);    // 'Hello World'

You don't actually have to declare it initially in the globalscope, you will not get a notice/warning/error, although it is obviously good practice to do so. (Although if good practice is the goal then you probably shouldn't be using global variables to begin with.)

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