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PHP Error: mysql_fetch_array() expects parameter 1 to be resource, boolean given

I am getting the following error for the code mentioned below in php:


Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in /Users/pubs/Sites3/parse/includes/parseAuthorSearch.php on line 62

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in /Users/pubs/Sites3/parse/includes/parseAuthorSearch.php on line 62

function findExactAuthorMatch($firstname, $lastname)
{
    $query22 = "SELECT COUNT(*) FROM authors WHERE lastname='".$lastname."' AND firstname='".$firstname."'";    
    $result22 = mysql_query($query22);
    $count22 = mysql_fetch_assoc($result22);
    if($count22 == 0) return false;
    else return true;
}
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marked as duplicate by Mike B, nickb, Marc B, mizipzor, kapa Jul 11 '12 at 10:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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Possible SQL injection. –  kapa Jul 11 '12 at 10:18
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4 Answers

Your query is wrong, try executing it in PHPMyAdmin or other, or try to echo it and see if it seems consistent.

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It looks like your mysql_query call returned false (a boolean), and then you're calling mysql_fetch_assoc on it without checking that it was valid.

Try this:

$result22 = mysql_query($query22) or die('Invalid MySQL query: ' . mysql_error());

That will tell you where the query died.

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  • You should not be using mysql_* functions any more
  • You should never, ever, ever directly put variables into a query; see the various escape functions available for the corresponding API. In this case use mysql_real_escape_string
  • To see the error of your query, do:

    if (!$result22) { die(mysql_error()); }

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This means your previous call to mysql_query() returned false, and so there are no results to fetch. This occurs when something was wrong with the query, such as a syntax error.

In this case you will want to check if $result22 is false, then see what mysql_error() has to say:

if ($result22 === false) {
    echo mysql_error();
    return false;
}
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