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function myfunc ()
{
    $a['foo'] = 'bar';
    $a['baz'] = 'qux';

    return $a;
}

How do you do it so that when you call $a = myfunc(); you can use echo $a->foo; and it will output bar?

Additional question: Having that simple function above, is it better to return an array or object?

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2  
"Better" is subjective. Better for what purpose? –  deceze Nov 14 '12 at 17:30
    
@deceze I guess my question is what is more efficient in terms of use of system resources in the same comparison that single quotes is faster than double quotes. –  IMB Nov 14 '12 at 17:33
1  
@IMB: Have a look at this: phpbench.com –  Rocket Hazmat Nov 14 '12 at 17:35
    
@RocketHazmat nice site –  IMB Nov 14 '12 at 17:35
    
@Rocket That site is interesting, but mostly missing the point. isset vs. empty vs. is_array is entirely pointless, for instance, since they all do very different things and are used in different situations. Don't choose which to use based on minuscule performance differences. –  deceze Nov 14 '12 at 17:43

3 Answers 3

up vote 7 down vote accepted

Just cast it as an object.

function myfunc ()
{
    $a['foo'] = 'bar';
    $a['baz'] = 'qux';

    return (object)$a;
}

As for which one you want, it's up to you. It depends on what you are doing with the returned object or array.

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If you return an array you will have to access the member as $a['foo']. The -> is indeed an oop operator. To use this you would need to create an object instead of an array, but that means you have to define a class first. This again means that the two members foo and baz must be present for all instanciations of such an object. So that is a completely different thing.

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1-I would do it like this :

function myfunc ()
{
    $a['foo'] = 'bar';
    $a['baz'] = 'qux';
    $array = new ArrayObject($a);
    return $array;
}

ArrayObject is supported form php version 5

2- doesn't really matter if you return array or object , its your decision

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