Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I created two functions both functions used to work before I turned them into functions and now I get the following errors Notice: Undefined variable: link, url and depth and I was wondering how can I fix this problem so they can work. The problem comes from the last piece of code allCategories($link[0], $url, 0, $depth+1); which I believe stems from the second function.

Function 1

function allCategories($parent = 0, $parent_url = '', $count = 0, $depth = 0){
    catQuery();
    global $link;           
    if($count == 0){
        echo '<ol>';
    } else {
    echo '<ol>';
    }

    foreach ($parent as $id => $cat) {
    if($cat['parent_id'] == '0'){
            $url = $parent_url . $cat['url'];
            $url = str_replace('&#063;cat=', '', $url);
            echo '<li><a href="http://www.example.com/cat/' . strip_tags($url) . '" title="' . strip_tags($cat['category']) . ' Category Link" class="category-headers">' . strip_tags($cat['category']) . '</a>';          
    } else {
            $indent = str_repeat('&nbsp; ', $depth * 1);
            $url = $parent_url . $cat['url'];
            $cat_num = array('&#063;cat=','&#038;sub1=','&#038;sub2='');
            $url = str_replace($cat_num, '/', $url);
            echo '<li>' . $indent . '<a href="http://www.example.com/cat/' . strip_tags($url) . '" title="' . strip_tags($cat['category']) . ' Category Link">' . strip_tags($cat['category']) . '</a>';
    }

        if(isset($link[$id])) {
            allCategories($link[$id], $url, $count+1, $depth+1);
    }               
            echo '</li>';
    }       
    echo '</ol>';
}

Function 2

function catQuery(){
    $cat_dbc = mysqli_query(database(),"SELECT * FROM categories ORDER BY parent_id, category LIKE '%more%', category ASC");
    if (!$cat_dbc) {
            trigger_error(mysqli_error(database()));
    }

    $link = array();
    while(list($id, $parent_id, $category, $url, $depth) = mysqli_fetch_array($cat_dbc)){
            $link[$parent_id][$id] = array('parent_id' => $parent_id, 'category' => $category, 'url' => $url, 'depth' => $depth);
    }
}

Display the desired output.

allCategories($link[0], $url, 0, $depth+1);
share|improve this question

closed as too localized by casperOne Aug 25 '12 at 19:40

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
You've shown your usage: allCategories($link[0], $url, 0, $depth+1); but none of the code from above this line; do you set the $link, $url and $depth variables? –  Nils Luxton May 14 '11 at 9:27
    
it should come from Function 2 –  HELP May 14 '11 at 9:35
1  
@SLEEP: That is not how variable scope works. –  Lightness Races in Orbit May 14 '11 at 9:38
    
to build the urls –  HELP May 14 '11 at 9:39
4  
It doesn't really help you that you create new accounts and severe your question history by that. This posting is just a variation of your previous code, but it's unclear how you broke it. Also you might benefit from an IDE with minimal variable tracing. –  mario May 14 '11 at 9:45

2 Answers 2

The answer Write code that does not try to access undefined variables. If you are a beginner, you might want to read a recent book about PHP5.

In your second function, you forgot global $link;. However, better return $link; and use $link = catQuery(); in your first function instead of this horrible abuse of global variables

For the other undefined vars.. did you define $link, $url and $depth before calling allCategories($link[0], $url, 0, $depth+1);?

share|improve this answer
1  
This answer does not help me at all. –  HELP May 14 '11 at 9:20
    
I hope now it does. –  ThiefMaster May 14 '11 at 9:23
1  
Then wat about being more specific? For example, show us the lines where your code emits those notices. –  ThiefMaster May 14 '11 at 9:27
2  
Despite having been pretty unhelpful initially, ThiefMaster is right - you will be better served showing us more of the code surrounding the allCategories($link[0], $url, 0, $depth+1); - it looks like you are getting confused about how variables/functions/scope works, but without further information it's hard to help. –  Nils Luxton May 14 '11 at 9:31
2  
@SLEEP: A complete, minimal testcase that demonstrates the problem with a minimum of fuss. –  Lightness Races in Orbit May 14 '11 at 9:39

change the end of function catQuery like this

    while(list($id, $parent_id, $category, $url, $depth) = mysqli_fetch_array($cat_dbc)){
            $link[$parent_id][$id] = array('parent_id' => $parent_id, 'category' => $category, 'url' => $url, 'depth' => $depth);
    }
   return $link;
}

then change the start of the allCategories function like this

function allCategories($parent = 0, $parent_url = '', $count = 0, $depth = 0){
    $link = catQuery();
    // global $link;           
    if($count == 0){

the reason why it didn't work is that you would need to have "global $link;" defined in each function. but global variables are not good practice, so best to return $link from catQuery function and then use it locally inside the allCategories function

share|improve this answer
    
I still get the same problem:( –  HELP May 14 '11 at 9:47
1  
Apparently he's also trying to use the variables from inside the function when calling it –  ThiefMaster May 14 '11 at 9:50

Not the answer you're looking for? Browse other questions tagged or ask your own question.