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To be able to use a variable within a function that was previously defined outside of the function we do this:

function animal() {    
     global $favAnimal, $personName;    
     //more code here    
}

But how can we use a variable that is defined within a function outside that function? For example the following doesn't work:

function animal() {    
    $animalName = 'tiger';    
}

animal();

echo $animalName; //prints nothing
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closed as not a real question by NikiC, ircmaxell, Jocelyn, Jay Gilford, j0k Mar 24 '13 at 7:18

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Is returning an object from the function or declaring an empty variable with the same name globally an option? –  slhck Jan 29 '11 at 7:57
    
excuse me, why do you want to do that? It isn't reasonable. How about there's 2 variable with the same name($animalName), in 2 distinct functions? Which one would you print? –  Hoàng Long Jan 29 '11 at 7:58

5 Answers 5

up vote 0 down vote accepted

You cannot access another function's local variables unless that function is higher up the call stack and has passed the variable into the called function. However, any function can add additional variables to the global scope.

It seems like you might be looking for the return statement:

function animal() {    
    $animalName = 'tiger';    

    return $animalName;
}

$name = animal();

echo $name; // prints 'tiger'
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Same way. But don't do it.

function animal() {    
    global $animalName;
    $animalName = 'tiger';    
}
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1  
What Ignacio is saying is that scopes are there for a reason, if you start including too many variables in the global scope you end up with spaghetti code –  Luis Jan 29 '11 at 8:01
function animal() {
    return 'ounce';
}

echo animal();

You should return the animal name.

And if you want to pass something into the function, use an argument, not a global:

function animal($type) {
    if ($type == 'cat') {
        return 'tiger';
    } else {
        return 'something else';
    }
}

echo animal('cat');
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looks fine to me some one voted down 3 of us with identical answers with out explanation –  Dagon Jan 30 '11 at 3:34
function animal() {    
    $animalName = 'tiger';    
return $animalName;
}

$animalName=animal();

echo $animalName; //prints tiger
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  function animal() {    
     animalName = 'tiger';  
     return $animalName;  
  }

  echo animal();
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