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I am completely stumped on what appears to be a trivial problem.

I have this function:

function findCategoryNameInTree($id, $tree) {
    foreach($tree as $branch) {
        if ($branch['category_id'] == $id) {
             echo $branch['name'];//works
             print_r($branch['name']);//works
             //return($branch['name']); //returns nothing
             return $branch['name'];//fix this line per feedback still no return value
        } else {
            if(count($branch['children']) > 0) {
                findCategoryNameInTree($id,$branch['children']);
            }
        }

    }
}

I can't figure out for the life of me why it's not returning anything.

Please help!

Edit Here's how I call my function

//what I really want to do
$primgenre = findCategoryNameInTree($cat_id,$category_tree['children']);

//but this doesnt work either
echo $primgenre;

//nor this
print_r($pringenre);
share|improve this question
3  
You didn't show us the piece of the code that calls your findCategoryNameInTree function and how is it that you determine that function's return value is something that's wrong and not your interpretation of function's return value. –  N.B. Dec 16 '11 at 17:13

6 Answers 6

up vote 0 down vote accepted

You forget to return for this :-

findCategoryNameInTree($id,$branch['children']);

Change :-

return findCategoryNameInTree($id,$branch['children']);
share|improve this answer
    
Unbelievable, cant believe I missed that. Thank you so much! My code works with or without the parentheses everyone else suggested was the problem. -3 all for that. –  KTastrophy Dec 16 '11 at 20:01
    
if you want get -1, then ask more question like this. to get +1, your question has to be understandable –  ajreal Dec 16 '11 at 20:03
    
Didn't realize my question was unclear. Looking at it again I guess I didn't actually ASK anything. Thanks for the tip. Too much of a rush I guess. –  KTastrophy Dec 16 '11 at 20:28

Just delete the round brackets, and then it should work!?

return $branch['name']; 

Thanks for the minus ;)

If your function works as to the point you say, calling

$test = findCategoryNameInTree(XY, "bla");
echo $test;

should output something.

share|improve this answer
    
It doesn't really matter –  matino Dec 16 '11 at 17:16
    
Matters when you return by reference, so it's best to always leave it off. –  Maerlyn Dec 16 '11 at 17:17
1  
reference : php.net/manual/en/function.return.php –  diEcho Dec 16 '11 at 17:25
    
I fixed this and it still returns no value; Any other ideas? –  KTastrophy Dec 16 '11 at 19:55
    
Didn't give you the minus btw –  KTastrophy Dec 16 '11 at 19:56

Try this:

function findCategoryNameInTree($id, $tree) {
foreach($tree as $branch) {
    if ($branch['category_id'] == $id) {
         x = $branch['name']; 
    } else {
        if(count($branch['children']) > 0) {
            findCategoryNameInTree($id,$branch['children']);
        }
    }

}
return x;

}

share|improve this answer
1  
There's no reason you can't have the return within the foreach loop. In fact, it's better to have it in the loop because you don't have to wait for the loop to finish in order to return the desired value. –  maček Dec 16 '11 at 17:21
    
I tested the code and it works for me with all things i could imagine like you do the return, like I do with a break in the foreach and then return ... –  djot Dec 16 '11 at 17:30

This works for me, also the $my_result way!

<?php

$tree = ARRAY();
$tree[0] = ARRAY('category_id'=>10, 'name'=>'ten', 'children'=>'');
$tree[1] = ARRAY('category_id'=>11, 'name'=>'eleven', 'children'=>'');
$tree[2] = ARRAY('category_id'=>12, 'name'=>'twelve', 'children'=>'');


function findCategoryNameInTree($id, $tree) {
  //$my_result = 'none';
  foreach($tree as $branch) {
    if ($branch['category_id'] === $id) {
      //echo $branch['name'];//works
      //print_r($branch['name']);//works
      //$my_result = $branch['name'];
      //break; 
      return $branch['name']; //returns nothing
    }
    //else {
    // if(count($branch['children']) > 0) {
    //    findCategoryNameInTree($id,$branch['children']);
    //  }
    //}
  }
  //return $my_result;
}

echo findCategoryNameInTree(10, $tree).'<br />';
echo findCategoryNameInTree(11, $tree).'<br />';
echo findCategoryNameInTree(12, $tree).'<br />';

?>
share|improve this answer

here clearly mentioned

When returning an array, you should declare the array before the return, else the result is not as you expect;

Also see the NOTE

You should never use parentheses around your return variable when returning by reference, as this will not work. You can only return variables by reference, not the result of a statement.

foreach($tree as $branch) { }

here $branch is just an internal pointer of array ( assume as reference ) of $tree.

share|improve this answer
    
I'm not returning an array $branch['name'] is a string; Also, I removed the parentheses and I'm still getting an empty return value; –  KTastrophy Dec 16 '11 at 19:51

Try this way:

$primgenre = findCategoryNameInTree($cat_id,$category_tree);

$branch is (should be) an array, so $tree is (should be). If $tree array contains well-formed $branch arrays everything should work fine. See my other solution with my example $tree array.

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