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I am trying to check whether an entry exists (one or more) in our database. However, even when I know there are no entries, I am getting an array which has a first entry of zero. Therefore it is not empty and I am not getting what I need.

Here's my code:

    <?php
    $query = mysql_query("SELECT * FROM table WHERE column = $yfbid_number AND timestamp BETWEEN (NOW()- Interval 1 DAY) AND NOW()");
    $array[] = array();
    while ($row = mysql_fetch_assoc($query)){
        $array[] = $row['column'];
    }
    ?>

When doing print_r on an array which should be empty, I am getting: ( [0] => Array ( ) ) and therefore count is 1 and not zero, which messes up my code. Any ideas how to get to a truly empty array in this situation? I'd rather not delete this entry but avoid it in the first place, because in most use cases I will get either an empty array or one that only has one entry (a real entry), in which case I will want to easily distinguish between the two. (as it is now, both give a count of 1 entry, which is very bad for our porpuses). Thanks.

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3 Answers 3

up vote 4 down vote accepted

Change:

$array[] = array();

to

$array = array();

With your version, if $array doesn't already exist, PHP will first create an array, then append an empty array to it. So you end up with a 1 element array whose only member is an empty array.

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+1 - Nice catch! –  Paulpro Feb 27 '12 at 3:20
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$array[] = array(); should be $array = array(). Right now, you are appending an array element to an array that is initialized. Turn notices on and you'll get a complaint about an undefined variable (probably).

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I suggest you first do a SELECT COUNT(*) to determine how many entries you'll get. Then you KNOW that the result will be a useful answer, and can make or not make a subsequent query on the basis of your result.

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