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I'm having trouble with the following code. What it should do is echo cats.php followed by example.php but it's not echoing the example.php. Any ideas why this might be happening?

$bookLocations = array(
    'example.php',
    'cats.php',
    'dogs.php',
    'fires.php',
    'monkeys.php',
    'birds.php',
);

echo $bookLocations[1];

function findfile($filenumber)
{
echo $bookLocations["$filenumber"];
}

findfile(0);
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1  
I fail to see why anyone would downvote this question. –  MiseryIndex Oct 12 '09 at 16:40

6 Answers 6

up vote 5 down vote accepted

i believe you may also need to declare the global variable in your function.

global $bookLocations;
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4  
-1 global variables are bad! –  markus Oct 12 '09 at 16:32
3  
don't disagree with you but given the function provided, that is the only way. Some of the suggestions to change the function declaration are also quite valid. –  thomas Oct 12 '09 at 16:34
    
Thats another issue, tharkun. He could have mentioned that in his answer, but this is obviously what the GP was trying to do, so this is the correct answer. –  gnud Oct 12 '09 at 16:34
    
no, it's not the correct answer! it's the wrong answer! the correct answer is to pass the array to the function! –  markus Oct 12 '09 at 16:38
1  
LOL, tharkun, calm down. :) Let him learn it the hard way. :P –  MiseryIndex Oct 12 '09 at 16:44

Try changing,

echo $bookLocations["$filenumber"];

to:

echo $bookLocations[$filenumber];

Edit* To expand on Thomas's correct answer, instead of using global variables, you could change your method to:

function findfile($filenumber, $bookLocations)
{
    echo $bookLocations[$filenumber];
}
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1  
Indeed. "thomas" has the right answer below. You need to use global $foo; within your function. It's a scoping issue. –  genio Oct 12 '09 at 16:32
    
Better try to echo $bookLocations; –  Ivan Nevostruev Oct 12 '09 at 16:32
    
not the most important reason why it doesn't work! –  markus Oct 12 '09 at 16:32
1  
@genio: that's bad advice, global variables are evil! –  markus Oct 12 '09 at 16:33
    
Heh dunno how I overlooked that. Should probably just change to pass the array as a parameter and then use it that way. –  Magic Hat Oct 12 '09 at 16:40

Ok, there are two issues.

Variable Scope

Your function doesn't know the array $bookLocations, you need to pass it to your function like so:

function findfile($filenumber, $bookLocations)

Array key

You don't want to wrap your array key in quotes:

wrong: $bookLocations["$filenumber"];
right: $bookLocations[$filenumber];
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Why wrong: $bookLocations["$filenumber"]; is wrong? –  Ivan Nevostruev Oct 12 '09 at 16:33
2  
Because the array key is $filenumber not $filenumber wrapped in quotes. It is not a string but it is an integer. –  markus Oct 12 '09 at 16:37
    
This depends on PHP configuration. It is preferable to avoid parentheses, though. –  Andrejs Cainikovs Oct 12 '09 at 16:37
    
+1 to aid tharkun in his crusade against global variables! –  MiseryIndex Oct 12 '09 at 16:53

The quotes in "$filenumber" turn your key into a string, when the keys to your array are all numbers. You are trying to access $bookLocations["1"] when in fact you want to access $bookLocations[1] -- that is to say, 1 is not the same as "1". Therefore, like others have said, you need to get rid of the quotation marks around the key (and check your variable scope too).

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function findfile($filenumber)
{
  global $bookLocations;
  echo $bookLocations[$filenumber];
}

Good-style developers usually avoid global variables. Instead, pass the array to the function as the parameter:

function findfile($files, $filenum)
{
  echo $files[$filenum];
}
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$bookLocations is out of scope for your function. If you echo $filenumber you will see that it's in scope because you passed it in by value. However, there is no reference to $bookoLocations.

You should pass in $bookLocations

declaration: function findfile($filenumber, $bookLocations){ call: findfile(1, $bookLocations);

You could also to declare $bookLocations as global, but globals should be avoided if possible.

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