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I have an array called $friend_array. When I print_r($friend_array) it looks like this:

Array ( [0] => 3,2,5 ) 

I also have a variable called $uid that is being pulled from the url.

On the page I'm testing, $uid has a value of 3 so it is in the array.

However, the following is saying that it isn't there:

if(in_array($uid, $friend_array)){
  $is_friend = true;
}else{
  $is_friend = false;

This always returns false. I echo the $uid and it is 3. I print the array and 3 is there.

What am I doing wrong? Any help would be greatly appreciated!

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what happens if you try in_array( $uid, $friend_array[0] ) –  Drewdin Aug 6 '11 at 23:21
    
Worth to mention: $is_friend = in_array($uid, $friend_array) is much more readable and does exactly the same. –  KingCrunch Aug 6 '11 at 23:29
    
The values are coming from SQL. I have a field called "friend_array" and it contains a comma separated list of values. Do I need to do a foreach within my while loop? I am terrible with arrays. –  Dex Aug 6 '11 at 23:33

3 Answers 3

up vote 2 down vote accepted

Array ( [0] => 3,2,5 ) means that the array element 0 is a string 3,2,5, so, before you do an is_array check for the $uid so you have to first break that string into an array using , as a separator and then check for$uid:

// $friend_array contains as its first element a string that
// you want to make into the "real" friend array:
$friend_array = explode(',', $friend_array[0]);

if(in_array($uid, $friend_array)){
  $is_friend = true;
}else{
  $is_friend = false;
}

Working example

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Blam! Thank you kind sir! You have solved my problem! –  Dex Aug 6 '11 at 23:47
    
@Dex - You're welcome! –  Peter Ajtai Aug 6 '11 at 23:49

Output of

Array ( [0] => 3,2,5 ) 

... would be produced if the array was created by something like this:

$friend_array = array();
array_push($friend_array, '3,2,5');
print_r($friend_array);

Based on your question, I don't think this is what you meant to do.

If you want to add three values into the first three indexes of the array, do the following:

$friend_array = array();
array_push($friend_array, '3');
array_push($friend_array, '2');
array_push($friend_array, '5');

or, as a shorthand for array_push():

$friend_array = array();
$friend_array[] = '3';
$friend_array[] = '2';
$friend_array[] = '5';
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This is really helpful...I think I need to read more about arrays and see if there's a more efficient way to do this. Thanks for your response! –  Dex Aug 6 '11 at 23:36

Looks like your $friend_array is setup wrong. Each value of 3, 2, and 5 needs its own key in the array for in_array to work.

Example:

$friend_array[] = 3;
$friend_array[] = 2;
$firned_array[] = 5;

Your above if statement will then work correctly.

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