7

What is the explanation for the following syntax?

$var1->$var2 // Note the second $
  • Thanks for all the answers! – eft Feb 23 '10 at 6:00
17

You are calling a property on $var1 that is named the same as the value of $var2.

For example:

$var2 = "name";

// The following are equivalent
$var1->name;
$var1->$var2;
9

$var1 is an object.

$var2 is (possibly) the name of a variable inside $var1.

If $var2="test"; this is evaluated to:

$var1->test;

You can do this with all sorts of things:

$test = array();
$name="test";
print_r($$name); // Prints array();

$test = new stdClass;
$test->hello = "hi";
$name2="hello";
echo $test->$name2; // Echos hi

You can even get really fancy:

echo $$name->$name2; // Echos hi
2

It means dynamically query a property in an object.

class A {
  public $a;
}

// static property access
$ob = new A;
$ob->a = 123;
print_r($ob);

// dynamic property access
$prop = 'a';
$ob->$prop = 345; // effectively $ob->a = 345;
print_r($ob);

so $var1 is an instance of some object, -> means access to a member of that object and $var2 contains the name of a property.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.