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here is my code for the query in php:

$query3 = mysql_query("SELECT * FROM area_of_work") or die('Invalid query:'. mysql_error());

while($query3 = mysql_fetch_assoc($query3)){
    $flag = true;
    foreach($listOfUserAreas as $obj){
        if($obj->areaId == $query3['id']){
            $flag = false;
            break;
        }  
    }
    if($flag){
        $areaObj = new AreaInfo();
        $areaObj->areaId = $query3['id'];
        $areaObj->areaName = $query3['areaOfWork'];
        $areaObj->areaTableName = $query3['tableName'];
        array_push($listOfUnusedAreas, $areaObj);
    }
}

and i am getting this error:

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, array given in C:\xampp\htdocs\job-skills\php\functions\user_unused_area_list.php on line 30 []

can't see something wrong. Thanks

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5  
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. –  Second Rikudo Oct 4 '12 at 11:48
1  
Did you connect to the database? –  nkr Oct 4 '12 at 11:50
    
Mostly likely you have setup for mysql_ to return array based reults within your connection –  Sammaye Oct 4 '12 at 11:51
    
I'll echo @MadaraUchiha comment, and add that a basic conversion from myslq_xx() to mysqli_xx() is generally pretty straightforward. –  SDC Oct 4 '12 at 11:51

8 Answers 8

up vote 3 down vote accepted

don't use the same variables.. try like this

$query3 = mysql_query("SELECT * FROM area_of_work") or die('Invalid query:'. mysql_error());

while($result = mysql_fetch_assoc($query3)){
.....//Your code
}
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Rename variable $query3 to $query or something different from variable used in your while loop.

What you do on line: while($query3 = mysql_fetch_assoc($query3)) is that you assign result of mysql_fetch_assoc to $query3 (it's resource at this point) on the first iteration and on the second you pass $query3 (an array already) to mysql_fetch_assoc.

Note: mysql_* functions are deprecated. Use PDO or mysqli_*

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while($query4 = mysql_fetch_assoc($query3)){

change name of fetch variable

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You're trying to assign associate array to resource

while($query3 = mysql_fetch_assoc($query3))

which is wrong... try with different variable while($Result = mysql_fetch_assoc($query3))

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Your problem is here:

$query3 = mysql_query("SELECT * FROM area_of_work") or die('Invalid query:'. mysql_error());
while ($query3 = mysql_fetch_assoc($query3)) {

It should be like this:

$q = mysql_query("SELECT * FROM area_of_work") or die('Invalid query:'. mysql_error());
while ($query3 = mysql_fetch_assoc($q)) {
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In this line:

while($query3 = mysql_fetch_assoc($query3))

you are reassigning $query3 with results of mysql_fetch_assoc

Should be something like this:

while($queryRes = mysql_fetch_assoc($query3))
share|improve this answer

This is wrong:

while($query3 = mysql_fetch_assoc($query3)){

You are using the same variable to read from, an to assign to.

You can fix it by replacing the aforementioned line, for this one:

$result = &$query3;
while($query3 = mysql_fetch_assoc($result)){

just changing those lines, the rest of your code will work.

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Your first loop will work ok, but your second will fail:

while($query3 = mysql_fetch_assoc($query3)){

After the first loop has executed, you are assigning the result array to the resource, effectingly overwriting the resource.

Replace your line like this:

while($listOfUserAreas = mysql_fetch_assoc($query3)){
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