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I wrote a mysql query that works fine in phpmyadmin version 3.5.4 and mysql version : 5.1.73

Query

$indexscoreqry = ("set @ctrnk:=-1; select x.* from  ( select productID , productname , price , mobile_score , format((((5/100)*mobile_score)+(5-(@ctrnk:=@ctrnk+1)*(5/(select count(*) from product a join product b on a.productID = b.productID where a.mobile_score = $mobilescore and a.categoryID !=13 and a.price > 0 order by a.price asc))))/2 , 2) as indexscore from product  where mobile_score = $mobilescore and categoryID !=13 and price > 0 order by price asc ) as x where x.productID = $proid");     
    $runQuery = mysql_query($indexscoreqry);
    $indexvalue = mysql_fetch_array($runQuery) or die(mysql_error());

Query Output :

set @ctrnk:=-1; select x.* from ( select productID , productname , price , mobile_score , format((((5/100)*mobile_score)+(5-(@ctrnk:=@ctrnk+1)*(5/(select count(*) from product a join product b on a.productID = b.productID where a.mobile_score = 75 and a.categoryID !=13 and a.price > 0 order by a.price asc))))/2 , 2) as indexscore from product where mobile_score = 75 and categoryID !=13 and price > 0 order by price asc ) as x where x.productID = 2242

PHPMyAdmin Output:

productID productname            price  mobile_score indexscore 
 2242     Motorola Moto G 16GB  13999       75        3.96

when i run in php code i am getting error message

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /home/public_html/controllers.php on line 3817 You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'select x.* from ( select productID , productname , price , mobile_score , format' at line 1

As per suggestion of Pnoniq

I tried mysqli in seperate page even though i am getting the same kind of error. here is my full script.

<?php

   error_reporting(-1);
   ini_set('display_errors', 'On');


$con=mysqli_connect("localhost","root","Zf5NODXBaaUElNHQ","mydb");
// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

echo $sql="set @ctrnk:=-1;
select x.* from
(
select productID , productname , price , mobile_score , format((((5/100)*mobile_score)+(5-(@ctrnk:=@ctrnk+1)*(5/(select count(*) from product a
join product b on a.productID = b.productID
where a.mobile_score = 77 and a.categoryID !=13 and a.price > 0 order by a.price asc))))/2 , 2) as indexscore
from product
where mobile_score = 77 and categoryID !=13 and price > 0 order by price asc
) as x where x.productID = 1582";
// mysqli_query or mysqli_multi_query
$result=mysqli_multi_query($con,$sql) or die(mysqli_error($con));

$row = mysqli_fetch_array($result, MYSQLI_BOTH);


print_r($row);

mysqli_close($con);
?>
Error : Warning: mysqli_fetch_array() expects parameter 1 to be mysqli_result, boolean given in /home/public_html/mysqli.php on line 26
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marked as duplicate by RandomSeed, John Conde Jul 30 at 11:14

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  
Why people still using mysql_* functions? It is almost deprecated. –  HddnTHA Jul 30 at 9:02

2 Answers 2

up vote 4 down vote accepted

Don't use mysql_*

Head over to the docs and read the warning.

Then, when querying the DB from php, only 1 query is allowed. You are passing in 2 queries. So there is your problem

share|improve this answer
    
My bad, I only saw the big bold headline. Perhaps moving to the top the part of your answer that adresses the issue would make it clearer. –  RandomSeed Jul 30 at 9:35
    
the headline solves the bigger problem ;) –  Pinoniq Jul 30 at 9:36
    
Yeah , But unfortunately i created my large project fully using mysql_connect. Now its really hard to change all the files. I Will change to mysqli in the future projects. Now is there any other way. –  Raaga Jul 30 at 9:46
    
Finally i fixed it by using cross join . Thanks Pinoniq –  Raaga Jul 30 at 10:53

please check your database connection if created. if the connection is not created in php page then use below connection string in your page

Eg. database connection code:

$con = mySql_connect("localhost","username","password");
$db = mySql_select_db($con,"databasename")
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