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

i've got two questions. I'm using this search query script to pull results from my database, it's set-up to search for users based on location, gender etc.

The results list in a drop down box and to save space i have limited the number of results that will be shown to five.

I have created a link that says view more results, because what i am trying to do is enable the user to click this link and be taken to a new page where all the results to their original search criteria are listed. can this be done, i have tried a number of ways without any luck.

Also i have tried to exclude 5 profiles; 99999, 99998, 99997, 99996, 99995, 99994, 99993 by adding this line to the query:

AND ptb_profiles.user_id != '99999'

but instead when i do that the whole query produces an error:

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /Applications/XAMPP/xamppfiles/htdocs/PTB1/includes/mod_sidebar/search.php on line 31

Please could someone show me how i could do this. Thank you.

<form method="get" action="">
<input type="text" name="query" class="searchbox" placeholder="Search Name/Location" style="width:120px;"/>
<input type="image" src="../PTB1/assets/img/icons/search.png" height="19" width="20" class="searchbutton" name="submit" value="Start Search" />
</form>

<?php
//PHP CODE STARTS HERE

if(isset($_GET['submit'])){

// Change the fields below as per the requirements
$db_host="localhost";
$db_username="root";
$db_password="";
$db_name="database";
$db_tb_atr_name="display_name";

//Now we are going to write a script that will do search task
// leave the below fields as it is except while loop, which will display results on screen

mysql_connect("$db_host","$db_username","$db_password");
mysql_select_db("$db_name");

$query=mysql_real_escape_string($_GET['query']);


$query_for_result=mysql_query("SELECT *
                        FROM ptb_stats
                        WHERE display_name like '%".$query."%' OR location LIKE '%".$query."%' OR gender LIKE '%".$query."%' OR nationality LIKE '%".$query."%' OR age LIKE '%".$query."%' OR postcode LIKE '%".$query."%' LIMIT 5");
echo "<div class=\"search-results\">";
while($data_fetch=mysql_fetch_array($query_for_result))
{

    echo "<div class=\"text\"><a href=\"profile.php?id={$data_fetch['user_id']}\" class=\"search\">";
    echo "<div class=\"spacing\"><img width=35px height= 30px src=\"data/photos/{$data_fetch['user_id']}/_default.jpg\" class=\"boxgridsearch\"/> "; 
     echo substr($data_fetch[$db_tb_atr_name], 0,160);
    echo "</a></div></div>";

}
echo "<div class=\"morebutton-search\"><a href=\"echo '%".$query."%'\">+ view more results</a></div>";

mysql_close();
}

?>
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marked as duplicate by Marc B, Jocelyn, PeeHaa, Michael Berkowski, Ed Heal Dec 29 '12 at 4:37

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.

3  
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  Jeremy Dec 29 '12 at 2:56
1  
As per the gazillions of other questions with your exact error message: your query has failed, you've assumed it always succeeds, and have not done ANY error checking. Add it, and mysql will tell you why there's a problem. –  Marc B Dec 29 '12 at 3:28
    
@John Do you mean the error comes out when you exclude the profiles. Is it? –  vinu Dec 29 '12 at 3:29
    
@Jocelyn - my question is nothing like that question. So not a possible duplicate at all. –  John Simmons Dec 29 '12 at 3:39
    
@John yes the AND ptb_profiles.user_id != '99993' is what's causing the error message, but i don't know why. Any suggestions please –  John Simmons Dec 29 '12 at 3:40
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1 Answer

This should be an error of your mysql statement. You are selecting data from ptb_stats but you are checking a value on ptb_profiles

Assuming user_id is primary for both table,if then use ptb_stats.user_id instead of ptb_profiles.user_id And do the following changes,

$query_for_result=mysql_query("SELECT *
                        FROM ptb_stats
                        WHERE (display_name like '%".$query."%' OR location LIKE '%".$query."%' OR gender LIKE '%".$query."%' OR nationality LIKE '%".$query."%' OR age LIKE '%".$query."%' OR postcode LIKE '%".$query."%') AND ptb_stats.user_id!='99999' LIMIT 5");

Make sure to use parenthesis as my code because there is two different condition to you to check

  • find the matching data for your query
  • Checking those data and excluding profile id

if you don't use parenthesis as above your code will give you an error

Hope this helps you.

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