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I've read the other questions. The error has been posted before ofcourse. It's a common error. How/Why I am getting the errror is unique. Not a duplicate.

I know this error message has been posted on before but not with my specific set of complications. I have recently put a site together on my local server using xammp. Everything worked properly before on my local machine before i uploaded. I have encountered at-least 8 new problems after uploading to my web host but have been able to fix each one. 3 of which with the help of this site. I believe I will have it completed after this error is fixed.

The issue is with my advert rotating system. It's a very simple script/system. There are 4 database for the 4 separate places on the page i have the rotating adverts. this is the second one i am attempting to put on the live site. I've already got the first one working with no error. The error on this one is on line 5

Any ideas? As always thanks a bunch!

Full Error:

Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given in /home/xxxxxx/public_html/includes/adverts/sidead1.php on line 5

Part of the code below:

<?php
    include '../includes/core/db/sidead1_dbinfo.php';

    $ads = mysql_query("SELECT `advert_id1`, `title1`, `desc1`, `image1` FROM `sidead1` WHERE UNIX_TIMESTAMP() < `expires1` AND `shown1`=0 ORDER BY `advert_id1` ASC LIMIT 1");
    while ($ads_row = mysql_fetch_assoc($ads)) {
        $advert_id1 = $ads_row['advert_id1'];
        $image1 = $ads_row['image1'];
        $title1 = $ads_row['title1'];
        $desc1 = $ads_row['desc1'];

        mysql_query("UPDATE `sidead1` SET `shown1`=1, `impressions1`=`impressions1`+1 WHERE `advert_id1`=$advert_id1");

        $shown1 = mysql_query("SELECT COUNT('advert_id1') FROM `sidead1` WHERE `shown1`=0");
        if (mysql_result($shown1, 0) == 0) {
            mysql_query("UPDATE `sidead1` SET `shown1`=0");
        }
    }

    ?>
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marked as duplicate by John Conde, HAL9000, DevZer0, Jason McCreary, bivoc Jul 8 '13 at 2:24

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.

1  
See this answer for how to troubleshoot this. –  John Conde Jul 8 '13 at 2:13
    
I looked at the answer but I do not understand it, sorry. Could you be more specific on how I should implement that? I should say rather, I am really new this all of this. –  user2526699 Jul 8 '13 at 2:16
    
I see this type of question all the time, you should read common database debugging for PHP and MySQL. –  Jason McCreary Jul 8 '13 at 2:19
    
I've read a ton of documentation before coming here to ask. I am not sure how/where to implement it tho. –  user2526699 Jul 8 '13 at 2:22

2 Answers 2

up vote 1 down vote accepted

First off use PDO! check if you are getting something in return from the SELECT statement here is how if (mysql_num_rows($result) == 0) { echo "No rows found, nothing to print so am exiting"; exit; }

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If you do not mind showing me with my code, where/how would i run this with the code I have from above? –  user2526699 Jul 8 '13 at 2:18
    
After you define the varialbe $ads before the while statement check if you are getting any result usin this if (mysql_num_rows($ads) == 0) { echo "No rows found, nothing to print so am exiting"; exit; } –  David Strada Jul 8 '13 at 2:23
    
Go ahead and stop using this script look for PDO here net.tutsplus.com/tutorials/php/… –  David Strada Jul 8 '13 at 2:24
    
Once i put in your ifk statement I get the following error Warning: mysql_num_rows() expects parameter 1 to be resource, boolean given in /home/ncgotggb/public_html/includes/adverts/sidead1.php on line 5 No rows found, nothing to print so am exiting –  user2526699 Jul 8 '13 at 2:25
    
also here php.net/manual/en/book.pdo.php Let's say for right now this is the 'best' way to doit, the way you are doing this is ancient, deprecated! Don't doit this way. –  David Strada Jul 8 '13 at 2:26

You aren't checking the return value of your query here:

$ads = mysql_query("SELECT `advert_id1`, `title1`, `desc1`, `image1` FROM `sidead1` WHERE UNIX_TIMESTAMP() < `expires1` AND `shown1`=0 ORDER BY `advert_id1` ASC LIMIT 1");

I'd guess you have a syntax error appearing at UNIX_TIMESTAMP() <expires1``. You can find out like this:

if (($ads = mysql_query("...your query...")) == false) {
   die("SQL Error:".mysql_error);
}

Always check the return status of your query.

Oh - mysql is deprecated. Use mysqli or PDO for new projects. And old ones!

share|improve this answer
    
thanks, were would i put your code in at though? sorry, as i told them as well I am new-ish to this and am not sure where to put this in my code. –  user2526699 Jul 8 '13 at 2:21
    
Replace the fourth line ($ads = ...) with the snippet I posted, after editing in your query. You also have an UPDATE query further down you should check the return status of. –  Mike W Jul 8 '13 at 2:24
    
I put your code in and get this error SQL Error:mysql_error –  user2526699 Jul 8 '13 at 2:27
    
Have you copied this die("SQL Error:".mysql_error); exactly? –  Mike W Jul 8 '13 at 2:40
    
Where do i paste the above in at? –  user2526699 Jul 8 '13 at 2:43

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