Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Possible Duplicate:
Warning: mysql_fetch_* expects parameter 1 to be resource, boolean given error

I recently got a work from a client, where I have to change the depreciated php old code to new one. In that code I came across mysql_db_query which I converted into mysql_query but the error was given

mysql_fetch_array expects parameter 1 to be resource, boolean given

//the old code was like:

$result = mysql_db_query($mysql_db,"SELECT Hierarchy FROM MenuSystem WHERE LENGTH(Hierarchy) >= 2 AND LOCATE(" . $_SESSION['AccessLevel'] . ",AccessLevels) <> 0;");

//and my new code is :

$result = mysql_query("SELECT Hierarchy FROM MenuSystem WHERE LENGTH(Hierarchy) >= 2 AND LOCATE(" . $_SESSION['AccessLevel'] . ",AccessLevels) <> 0");

please tell me the problem

it refers to line number 11 where is the end bracket of while loop

while ($row = mysql_fetch_array($result)) {
    $ConcatHierarchy .= $row["Hierarchy"];
}
share|improve this question

marked as duplicate by John Conde, Conrad Frix, j0k, Donal Fellows, dgw Aug 3 '12 at 15:27

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.

    
You need to find where in the code the error is occurring and post it here. The error should state a line number and source file. – pyrospade Aug 2 '12 at 2:51
    
For your information, you're replacing deprecated code with deprecated code. Consider using PDO ou MySQLi instead of the old mysql_ functions. – Tchoupi Aug 2 '12 at 2:54
    
i have edited the question and now you can see the error line – monk Aug 2 '12 at 2:54
    
That is indeed your problem...test if ($result == false) { ... } before passing it to mysql_fetch_array. – pyrospade Aug 2 '12 at 2:56
1  
mysql_error(); – zerkms Aug 2 '12 at 2:56
up vote 1 down vote accepted

I can't see that the sole code will cause error. However, if you want to use $result as an array, that may rise a problem as we need to check it first. If query fails it will return a FALSE rather than a resource i.e., an array.

(I mean you use the resource later as an array actually. But yes $result is either a FALSE or a resrouce which can be used by calling mysql_fetch_array(). thanks for your comment)

Actually you can check other posts such as: mysql_fetch_array() expects parameter 1 to be resource problem

fyi, as suggested by the manual, ppl may prefer PDO now: *Use of this extension is discouraged. Instead, the MySQLi or PDO_MySQL extension should be used.*

share|improve this answer
    
$result wouldn't be an array, it would be an object that returns an array from mysql_fetch_array. Either way, this is more than likely your issue. Test for $result before passing it to mysql_fetch_array. Something like if ($result == False) { die(); } except better error handling, of course. Use exceptions if possible. – pyrospade Aug 2 '12 at 2:55
    
i have edited the question and now you can see the error line – monk Aug 2 '12 at 2:56
    
is there anything wrong syntactically with the query string?? – monk Aug 2 '12 at 2:57
    
Maybe you try the sql statement in any query tools like workbench first? first I thought you have a duplicate field name with the table name but after I tried it is allowed actually. Not really sure now... – jc W Aug 2 '12 at 3:03
    
Sorry ignore my previous one. I thought the table name is Hierarchy but it is actually MenuSystem. Anyway just echo mysql_error() to see what the error is. – jc W Aug 2 '12 at 3:11

You're doing a string operating, on something that's lacking quotes to make it into a string:

... AND LOCATE(" . $_SESSION['AccessLevel'] . ",AccessLevels) <> 0");
               ^--                             ^---

the indicated points require single quotes ('). Right now you're probably embedding some string, like 'SuperUser' in there. Without the quotes, that appears to MySQL as a field name, which almost certainly doesn't exist.

if you'd had appropriate error handling in your code, you'd have seen this immediately from the error message:

$result = mysql_query(...) or die(mysql_error());
                          ^^^^^^^^^^^^^^^^^^^^^^--- bare minimum
share|improve this answer

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