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Ok then guys, this is embarassing. I am getting this PHP error, already linted, checked code and don't get the answer. Any suggestion?

**Warning**: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in file.php on line **, heres the complete code

<?
session_start();

include 'keys.php';

include 'EpiCurl.php';
include 'EpiOAuth.php';
include 'EpiTwitter.php';
?>

As additional data, it pushes data correctly to databases but interrupts the following part of the code.

UPDATE: The problem was in the "require" files, not in the code I posted, I was using this code: while($results = mysql_fetch_array($results)) { in where I repeated 2 $results

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4  
Welcome to Stack Overflow! You are not doing any error checking in your query, so it's no wonder it breaks when the query fails. How to do this is outlined in the manual on mysql_query() or in this reference question. –  Pekka 웃 Mar 3 '12 at 0:38
1  
This is getting out of hand... Luis, when you typed that title every single "Questions with similar titles" was a duplicate. –  Mike B Mar 3 '12 at 0:39
2  
@Luis When you entered the question title, you had thousands and thousands of identical questions in the suggestions box, all of which deal with this exact issue. Had you looked closely at one of them (or looked at the examples in the PHP manual) you would already be on the way to solving this –  Pekka 웃 Mar 3 '12 at 0:45
1  
What does mysql_error() tell you? (And I see a fetch_array() call there. Can you confirm it is the correct one? Which is line 41?) –  Pekka 웃 Mar 3 '12 at 0:49
3  
I'd love to know who found this question useful. –  Mike B Mar 3 '12 at 1:20

2 Answers 2

up vote 0 down vote accepted

You're assuming that mysql_query() with a SELECT statement always returns a resultset resource. This is not the case. Quote from mysql_query() documentation:

For SELECT, SHOW, DESCRIBE, EXPLAIN and other statements returning resultset, mysql_query() returns a resource on success, or FALSE on error.

For other type of SQL statements, INSERT, UPDATE, DELETE, DROP, etc, mysql_query() returns TRUE on success or FALSE on error.

Thus, in case of error you end up passing a boolean FALSE value to mysql_fetch_array() instead of a resultset. This is why one should check whether the value returned by mysql_query() is FALSE before passing it to other functions as a resultset.

UPDATE: Apparently the code we were shown was different from the one actually causing the problem. The problem was caused by passing a return value from mysql_fetch_array() back to it on a second call:

while($results = mysql_fetch_array($results))

Either way, passing a value which isn't a resultset to mysql_fetch_array() was the cause of the issue exactly as the error message said:

Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource in file.php on line

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The query he's running the fetch_assoc() on is a SELECT one –  Pekka 웃 Mar 3 '12 at 0:46
    
Maybe today is not the best day to code PHP, so what should I do? I didn't understand your answer, thanks :) –  Luis Mar 3 '12 at 0:46

Errors occur here

$count_users = mysql_query("SELECT * FROM `users` WHERE `user`='$username' AND `authorized`='$app'");

$results_count = mysql_num_rows($count_users);


 ****=> $count_users is not valid resource id so** $results_count returns some value which is not 0**
        **=> therefore not going into this if statement**

        if ($results_count == 0) 
        {

        }
        else  **=> instead going to this else statement but $count_users is not valid resource id so mysql_fetch_array throws error**       
        { 
            while($count_results = mysql_fetch_array($count_users)) {$tokeni = $count_results["token"];}
            mysql_query("UPDATE `users` SET `date`=CURDATE(), `time`=CURTIME(), `token`='$final_token', `secret`='$final_secret' WHERE `token`='$tokeni'") or die(mysql_error());   
        }
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I didn't understand you answer, can you edit it and make it cleaner? Thanks! –  Luis Mar 3 '12 at 0:58
    
Sorry for my uncleaned answer as I am new to this but what I mean is the $count_users is not valid resource id and then it does not satisfy your statement if ($results_count == 0) so it goes into else statement which it is assumed that there is at least one row returned from db but again $count_users is not valid resource id so mysql_fetch_array($count_users) throws error mysql_fetch_array(): supplied argument is not a valid MySQL result resource –  Hieu Van Mach Mar 3 '12 at 1:31

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