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Good day to all:

I have the following code:

 $final = array();
    foreach ($words as $word) {
        $query = "SELECT Something";
        $result = $this->_db->fetchAll($query, "%".$word."%");
        foreach ($result as $row)
        {
            $id = $row['page_id'];
            if (!empty($final[$id][0]))
            {
                $final[$id][0] = $final[$id][0]+3;
            }
            else
            {
                $final[$id][0] = 3;
                $final[$id]['link'] = "/".$row['permalink'];
                $final[$id]['title'] = $row['title'];
            }
        } 
    }

The code SEEMS to work fine, but I get this warning:

Warning: Cannot use a scalar value as an array in line X, Y, Z (the line with: $final[$id][0] = 3, and the next 2).

Can any1 tell me how to get rid of it? Thank you.

share|improve this question
    
Is this the real code? I've tried to reproduce the issue and I couldn't... –  Álvaro G. Vicario May 16 '11 at 16:02
    
@alvaro-g-vicario You are correct that the listed code is missing the statement that would cause the error. Something like $final[$id] = $row['page_id']; is needed to make PHP complain –  brian_d May 16 '11 at 17:20
    
that is the real code. is copy paste –  zozo May 17 '11 at 8:31

3 Answers 3

up vote 15 down vote accepted

You need to set$final[$id] to an array before adding elements to it. Intiialize it with either

$final[$id] = array();
$final[$id][0] = 3;
$final[$id]['link'] = "/".$row['permalink'];
$final[$id]['title'] = $row['title'];

or

$final[$id] = array(0 => 3);
$final[$id]['link'] = "/".$row['permalink'];
$final[$id]['title'] = $row['title'];
share|improve this answer
1  
You can simplify some lines in the first case to $final[$id][] = 3; and in the second to $final[$id] = array(3); :) –  Tadeck May 16 '11 at 16:07
1  
@Tadeck yes you can, I thought I would be explicit though ; ) –  brian_d May 16 '11 at 16:46
    
works like a dream. –  zozo May 17 '11 at 8:33

A bit late, but to anyone who is wondering why they are getting the "Warning: Cannot use a scalar value as an array" message;

the reason is because somewhere you have first declared your variable with a normal integer or string and then later you are trying to turn it into an array.

hope that helps

share|improve this answer
1  
+1 explained problem, rather than just give solution. –  Edward Oct 1 '13 at 10:12
    
but why doesn't php complain when assigning array elements to that "flat" variable in the first place? –  Marki555 Nov 26 '13 at 14:53
    
not sure i understand marki555; if you declare it as an array from the very beginning, then you're fine –  Lan Dec 10 '13 at 12:12

Also make sure that you don't declare it an array and then try to assign something else to the array like a string, float, integer. I had that problem. If you do some echos of output I was seeing what I wanted the first time, but not after another pass of the same code.

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