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Why doesn't

public static $CURRENT_TIME = time() + 7200;

work (Error):

Parse error: syntax error, unexpected '('

but

class Database {
  public static $database_connection;

  private static $host = "xxx";
  private static $user = "xxx";
  private static $pass = "xxx";
  private static $db = "xxx";

  public static function DatabaseConnect(){
    self::$database_connection = new mysqli(self::$host,self::$user,self::$pass,self::$db);
    self::$database_connection->query("SET NAMES 'utf8'");
    return self::$database_connection;
  }
}

does work.

I'm new to OOP, I'm so confused.

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closed as too localized by tereško, Ocramius, DaveRandom, cryptic ツ, Jocelyn Apr 12 '13 at 0:38

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1  
Define "doesn't work". –  Mark Elliot Sep 1 '11 at 23:08
    
sorry, it errors out. –  Shane Larson Sep 1 '11 at 23:08
1  
What error do you receive? –  George Cummins Sep 1 '11 at 23:09
1  
Define "errors out", say, by providing the error. It might be worth a look at How to ask great technical questions –  Mark Elliot Sep 1 '11 at 23:10
    
No doubt a parse error along the lines of Parse error: syntax error, unexpected '('. –  webbiedave Sep 1 '11 at 23:19
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4 Answers

You cannot initialize any member variable (property) with a non-constant expression. In other words, no calling functions right there where you declare it.

From the PHP manual:

This declaration may include an initialization, but this initialization must be a constant value--that is, it must be able to be evaluated at compile time and must not depend on run-time information in order to be evaluated.

The best answer I can give as to why? Because the static field initializers aren't really run with any sort of context. When a static method is called, you are in the context of that function call. When a non-static property is set, you are in the context of the constructor. What context are you in when you set a static field?

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+1 Has nothing to do with it being static and good "straight from the horse's mouth" quote via the manual. –  webbiedave Sep 1 '11 at 23:14
    
what i was trying to get from this was why does setting a property inside a static method work, but not for a static property outside of a method. –  Shane Larson Sep 2 '11 at 0:32
    
@ShaneLarson see my edit for an answer as to "why" –  Jonathon Reinhart Nov 11 '11 at 20:15
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Class members can only contain constants and literals, not the result of function calls, as it is not a constant value.

From the PHP Manual:

Like any other PHP static variable, static properties may only be initialized using a literal or constant; expressions are not allowed. So while you may initialize a static property to an integer or array (for instance), you may not initialize it to another variable, to a function return value, or to an object.

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1  
No class members can contain the result of function calls, static or not. –  Explosion Pills Sep 1 '11 at 23:11
    
You are correct –  johnluetke Sep 1 '11 at 23:14
    
Receive an E_STRICT? No, you will receive a parse error. –  webbiedave Sep 1 '11 at 23:15
    
Edited. Thanks. –  johnluetke Sep 1 '11 at 23:17
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They have explain why it doesn't work. This would be the work around.

class SomeClass {
   public static $currentTime = null;

   __construct() {
      if (self::$currentTime === null) self::$currentTime = time() + 7200;
   }
}
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Others have already explained why you can't. But maybe you're looking for a work-around (Demo):

My_Class::$currentTime = time() + 7200;

class My_Class
{
    public static $currentTime;
    ...
}

You're not looking for a constructor, you're looking for static initialization.

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