You want to assign a default value to a variable that doesn't already have a value. It often happens that you want a hardcoded default value for a variable that can be overridden from form input or through an environment variable.
Use isset( ) to assign a default to a variable that may already have a value:
if (! isset($cars)) { $cars = $default_cars; }
Use the ternary (a ? b : c) operator to give a new variable a (possibly default) value:
$cars = isset($_REQUEST['cars']) ? $_REQUEST['cars'] : $default_cars;
Using isset( ) is essential when assigning default values. Without it, the nondefault value can't be 0 or anything else that evaluates to false. Consider this assignment:
$cars = $_REQUEST['cars'] ? $_REQUEST['cars'] : $default_cars;
If $_REQUEST['cars'] is 0, $cars is set to $default_cars even though 0 may be a valid value for $cars.
You can use an array of defaults to set multiple default values easily. The keys in the defaults array are variable names, and the values in the array are the defaults for each variable:
$defaults = array('emperors' => array('Rudolf II','Caligula'), 'vegetable' => 'celery', 'acres' => 15); foreach ($defaults as $k => $v) { if (! isset($GLOBALS[$k])) { $GLOBALS[$k] = $v; } }
Because the variables are set in the global namespace, the previous code doesn't work for setting function-private defaults. To do that, use variable variables:
foreach ($defaults as $k => $v) { if (! isset($$k)) { $$k = $v; } }
Documentation on isset( ) at http://www.php.net/isset; variable variables are discussed in Recipe 5.5 and at http://www.php.net/language.variables.variable.
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