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$video = mysql_query("SELECT vid FROM fav WHERE uid = ". $loggedInUser->user_id ."");
$result = mysql_query("SELECT * FROM tab WHERE ID = ". $video .""); 
if (!$result)
die("mySQL error: ". mysql_error());
while($row = mysql_fetch_object($result));
echo ",$row->ID,";

mySQL error: 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 '' at line 1

I think the code speaks for itself, but I don´t get it, how to solve this. What did I do wrong? I only want to get the video id (vid) where the user id (uid) equals $loggedInUser->user_id.

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closed as not constructive by raheel shan, Yogesh Suthar, hjpotter92, kapa, hakre Apr 29 '13 at 10:21

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6 Answers 6

up vote 1 down vote accepted
$rec    = mysqli_query("SELECT vid FROM fav WHERE uid = ". $loggedInUser->user_id);  
$video  =   mysqli_fetch_assoc($rec);       
$id =   $video['vid'];      
$result = mysqli_query("SELECT * FROM tab WHERE ID = $id");    

EDITS

$records    =   array();
$rec    = mysqli_query("SELECT vid FROM fav WHERE uid = ". $loggedInUser->user_id);  

while($row = mysqli_fetch_assoc($rec)){
    $id =   $row['vid'];      
    $result = mysqli_query("SELECT * FROM tab WHERE ID = $id");  
    $records[]  =   mysqli_fetch_assoc($result);
}

echo '<pre>';
print_r($records);
share|improve this answer
    
+1 since this is what OP asked for –  Aquillo Apr 25 '13 at 7:16
    
thanks a lot, but how do I fetch the rows from vid when it is not just one result, but multiple? so vid is not just one id, but several different id´s. –  Ryan Apr 26 '13 at 7:56
    
use a loop to get ids one by one –  raheel shan Apr 26 '13 at 8:00
    
@Ryan see the edits –  raheel shan Apr 26 '13 at 8:03
    
I added my $db to the query and it´s working just fine. Thank you so much! –  Ryan Apr 26 '13 at 8:11

You mean something like this?

SELECT tab.* FROM tab JOIN fav ON tab.ID = fav.vid AND fav.uid = ###

This way you won't need to execute two queries in order to get the same result. In case you need some values from fav too, you can add them to the SELECT just like tab.* (selects every column from tab).

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Please correct your answer. JOIN ... ON, not WHERE. Or am I missing something? –  HAL9000 Apr 25 '13 at 7:10
    
@CORRUPT: Sorry, my mistake! You're absolutely right. Raheel already beat me to it :) –  Aquillo Apr 25 '13 at 7:11

mysql_query doesn't return a string. It returns a resource.

Check the PHP-MySQL doc to see how to retrieve data from a query result.

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You have to fetch your result using mysql_fetch_array() here and then assign its value

$arr= '';
$video = mysql_query("SELECT vid FROM fav WHERE uid = ". $loggedInUser->user_id ."");
while($row = mysql_fetch_array($video)) {
    $arr = $row['vid'];
}
$result = mysql_query("SELECT * FROM tab WHERE ID = ". $arr .""); 
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Try this:

function getQueryData($sQuery)
{
    $result = mysql_query($sQuery); 
    $rows = Array();
    while($row = mysql_fetch_array($result, MYSQL_ASSOC))
    {
       $rows[] = $row;
    }
    @mysql_free_result($result);    
    return $rows;
}
$video = getQueryData("SELECT vid FROM fav WHERE uid = ". $loggedInUser->user_id ."");
if(!empty($video)) {
   $result = getQueryData("SELECT * FROM tab WHERE ID = ". $video[0]['vid'] .""); 
   print_r($result);
}
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The only answer I can give is RTFM :) But I'll explain it to you:

The method mysql_query() returns a resource. A resource is not a string, integer or array. But you can get all data you want from the resource. For example you can get the count of rows (mysql_num_rows()) or the data, selected by the query (mysql_fetch_assoc() returns it as associative array).

For more info, please take a look at the examples provided at the php-manual: http://www.php.net/manual/en/function.mysql-fetch-assoc.php

But please use mysqli or PDO instead of mysql. I'm here just talking about the functions you use in PHP. The PHP-extension mysql is deprecated since PHP 5.5 and you shouldn't use something, you now know of, will be removed. If you ask, why it is deprecated: http://de2.php.net/manual/en/faq.databases.php#faq.databases.mysql.deprecated

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