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I am new to PHP and I am trying to create a web mashup with amazon and ebay. My problem is that I have a function called "printCategoryItems()" which sets a variable called $keyword. I want to use this variable elsewhere in the code but I can't get it to work. For Example,


<?php
function printCategoryItems(){
    if(isset($_GET['keyword'])){
        $keyword = $_GET['keyword'];
        ...
    }
}
...

$query = $keyword;

...

This is the sort of thing I am trying to do but I end up getting an Undefined variable error for keyword. Is there a way for me to do what I'm trying to do?

Thanks for your help in advance.

(Only have Java Programming Experience)

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4 Answers

You could use the global keyword in the function, so $keywords inside the function refers to $keywords outside the function :

function printCategoryItems() {
    global $keyword;
    if(isset($_GET['keyword'])){
        $keyword = $_GET['keyword'];
    }
}

printCategoryItems();
var_dump($keyword);

This is because variables inside a function belong to the local-scope of the function, and not the global scope (I haven't done any JAVA for a long time, but I think it's the same in JAVA : a variable declared inside a function is not visible from outside of that function).


But using global variables is generally not a great idea... a better solution would be to have your function return the data ; for instance :

function printCategoryItems() {
    if(isset($_GET['keyword'])){
        return $_GET['keyword'];
    }
}

$keyword = printCategoryItems();
var_dump($keyword);


As a semi-side-note : another solution, still with global variables (not a good idea, again) would be to use the $GLOBALS superglobal array :

function printCategoryItems() {
    if(isset($_GET['keyword'])){
        $GLOBALS['keywords'] = $_GET['keyword'];
    }
}

printCategoryItems();
var_dump($GLOBALS['keywords']);

Here, no need for the global keyword anymore.


And, to finish, you should read the PHP documentation -- especially the part about Functions.

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Return the variable from the function

return $keyword;

and assign it when you call the function

$query = printCategoryItems();

In addition, you could declare $query as empty string and pass it to the function by reference, e.g. printCategoryItems(&$query). Or you could wrap your code into a class and make $query an instance variable, so you can set it with $this->query = $keyword.

However, from a function named printCategoryItems(), I wouldn't expect it to set something, but to print something on the screen. You might want to consider the responsibility of the function.

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1  
This would be the best way to tackle such an issue –  Jon Winstanley Feb 19 '10 at 12:30
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Totally agree with the opposition to global. Whereever you can avoid global, just avoid it. Don't think, but avoid. And in PHP, I cannot think of any scenario, where you could not avoid global.

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If you want to access a variable which is defined somewhere else but you want to access it inside and outside of the function, precede it with global keyword:

function printCategoryItems(){
    if(isset($_GET['keyword'])){

        global $keyword = $_GET['keyword'];
        ...
    }
}
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2  
PHP is not Javascript, so Method 1 won't work. And using global is considered bad practise. –  Gordon Feb 19 '10 at 12:24
    
@Gordon: what does that mean? –  Sarfraz Feb 19 '10 at 12:28
1  
In Javascript you can define a variable outside the function scope and when called inside, it will bubble up, but this is not the case in PHP, so in your first example, $keyword inside the function will not refer back to $keyword outside the function. It's two separate variables. –  Gordon Feb 19 '10 at 12:31
    
@Gordon: right thanks forgot that in a bit of hurry :( –  Sarfraz Feb 19 '10 at 12:32
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