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PHP: Warning: sort() expects parameter 1 to be array, resource given

I keep getting the following message Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\test\test.class.php on line 22 But when i check the code i can't see what is wrong...

<?php
// Main menu items
$sql=mysql_query("SELECT * FROM category WHERE tier='1' ORDER BY id ASC");
while($row = mysql_fetch_array($sql)){      
    $p_id= $row["id"];
    $p_category_name= $row["category_name"];
    $mainMenu[''.$p_category_name.'']= $p_id;

    $sql_1=mysql_query("SELECT * FROM category WHERE tier='2' parent='$p_id' ORDER BY id ASC");
    while($row_1 = mysql_fetch_array($sql_1)){ **This is line 22**
        $c_id= $row_1["id"];
        $c_category_name= $row_1["category_name"];
        $subMenu[''.$p_category_name.''][''.$c_category_name.''] = 'product1.php';
    } 

}
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marked as duplicate by casperOne Jul 13 '12 at 15:17

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.

    
Your mysql_query is probably generating a MySQL error, but you don't seem to have any error handling code. Try adding some first, for example by checking if the return value of mysql_query evaluates to true and if not, show or log the output of mysql_error. –  Another Code Mar 10 '12 at 17:04
    
@AnotherCode although you are right in general, mysql error messages are quite vague and can help a little –  Your Common Sense Mar 10 '12 at 17:13

6 Answers 6

up vote 3 down vote accepted

This means mysql_query failed to execute the query, and you should use mysql_error() to see the error message.

In this case, it looks like you're missing an AND:

$sql_1=mysql_query("SELECT * FROM category WHERE tier='2' AND parent='$p_id' ORDER BY id ASC");

(And please look into PDO.)

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+1 ... and not PDO yet, PDO is not good for beginners. He must learn some mysql basics first :) –  Wh1T3h4Ck5 Mar 10 '12 at 17:20
    
thanks for the link i'll go and check it out –  JimmyV Mar 10 '12 at 17:22

You have an error in your query (forgot the and). Try this

SELECT * FROM category WHERE tier='2' and parent='$p_id' ORDER BY id ASC
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You've got an SQL syntax error:

$sql_1=mysql_query("SELECT * FROM category WHERE tier='2' parent='$p_id' ORDER BY id ASC");
                                                         ^-- missing ' AND '

If you had proper error handling in your code, you've have seen this:

$sql_1 = mysql_query(...) or trigger_error(mysql_error());
                         ^^^^^^^^^^^^^^^^^^^^^^--- bare mininum handling

NEVER assume a query has succeeded.

share|improve this answer
    
Thanks for the quick responce. I am new to all this and i lack a lot of knowledge, i will try to keep that in my mind –  JimmyV Mar 10 '12 at 17:09
2  
NEVER use die for this –  Your Common Sense Mar 10 '12 at 17:09

AND is missing from the query in the WHERE clause

    $sql_1=mysql_query("SELECT * FROM category WHERE tier='2'  parent='$p_id' ORDER BY id ASC");

it should be:

    $sql_1=mysql_query("SELECT * FROM category WHERE tier='2' AND parent='$p_id' ORDER BY id ASC");
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Try making $row an array:

while($row[] = mysql_fetch_array($sql))

make sure all your queries are like this:

$sql = mysql_query("SELECT * FROM category WHERE tier='1' ORDER BY id ASC") or die(mysql_error());

http://php.net/manual/en/function.mysql-fetch-array.php

Additionally I think your supposed to be using mysql_fetch_assoc(); http://www.php.net/manual/en/function.mysql-fetch-assoc.php

Try this:

$sql = "SELECT * FROM category WHERE tier='1' ORDER BY id ASC";
$fetch = mysql_fetch_assoc(mysql_query($sql)) or die(mysql_error());
while ($row = $fetch) {
    $p_id = $row["id"];
    $p_category_name = $row["category_name"];
    $mainMenu[''.$p_category_name.'']= $p_id;

    $sql_1 = "SELECT * FROM category WHERE tier='2' AND parent='$p_id' ORDER BY id ASC";
    $fetch_1 = mysql_fetch_assoc(mysql_query($sql_1)) or die(mysql_error());
    while ($row_1 = $fetch_1) {
        $c_id = $row_1["id"];
        $c_category_name = $row_1["category_name"];
        $subMenu[''.$p_category_name.''][''.$c_category_name.''] = 'product1.php';
    } 
}
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Remove quotes from numerics.

Tier=1

plus check your sql by running in phpmyadmin to check whether it runs or not.

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