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i am trying to echo some results here $aditya is a array which contains multiple value and $var3 also contains multiple value but when i am echoing it it showing only one value

please figure out what wrong i am doing

$query1= mysql_query("SELECT * FROM table WHERE col2 in ($aditya)");

while($var1=mysql_fetch_array($query1))
{

$var2=$var1['col1'];
$var3=$var1['col2'];
$var4=$var1['col3'];

 $name=mysql_query("SELECT f_name FROM table2 WHERE f_id=$var2");
$tname=mysql_fetch_array($name);



   echo "</br>"."</br>"."<a style='color:blue' href=something.php?f_id=$var2   target=_BLANK >".$name['f_name']."</a>"." "."$var3"." "."("."$var4".")";

}
share|improve this question
    
If $aditya is array then you should change your SQL query like this, $query1= mysql_query("SELECT * FROM table WHERE col2 in (".implode(', ', $aditya).")"); – Muthu Kumaran Aug 10 '12 at 6:34
    
dump the arrays inside the while loop to see what they contain; print_r($var1) – Vishal Aug 10 '12 at 6:34
    
@MuthuKumaran.. i am doing that in a seperate query $aditya = implode(',', $ids_array); – Aditya Kumar Aug 10 '12 at 6:44

If $aditya really is an array then it's impossible to use it the way you are in your query. MySQL expects a comma separated list of elements, so you could implode the PHP array and feed it to the query:

$query1= mysql_query("SELECT * FROM table WHERE col2 in (" . implode(',', $aditya) . ")");

Besides that you might wanna consider giving your variables more meaningful names, because you'll only confuse yourself and other coders working on your projects if you name them $var1, $var2 etc. Just a hint.

share|improve this answer

So many things might be wrong here

A. $aditya was not properly defined. If its an array then you need to combine it with implode if noy make sure its properly formatted

Expected Output should be like this

 SELECT * FROM table  WHERE col2  IN ( 250, 220, 170 );

B. $name is not an array so $name['f_name'] would not work. You use use $tname['f_name'] instead

C. I think you need to update your question with the exact error you are having your code as so many things that can go run that we can not test remotely eg. Does a table name table even exist in the first place

share|improve this answer

Most probably the problem comes from your query. Put echo $query1; exit; and try it in phpmyadmin if u have such. Other approach to see what you get from the query is to place:

echo $var1['col1'].", ".$var1['col2'].", ".$var1['col3'];

in the while() to see what u get from the query. The problem isn't in the echo for sure.

UPDATE 2

$query1 = ("
    SELECT unique_ids, GROUP_CONCAT( whatuwant )
    FROM table
    WHERE col2 in ($aditya)
    GROUP BY unique_ids
");
share|improve this answer
    
I think you should put this as a comment. – Mageek Aug 10 '12 at 6:32
    
I will edit it in a minute as an answer – Martin Aug 10 '12 at 6:33
    
@Martin did that, it is echoing, but it is echoing seperate records for two diff attributes of same id , i want to concatenate that. 19, text1, 1 19, text2, 1 i want something like 19, text1(1),text2(1) – Aditya Kumar Aug 10 '12 at 6:40
    
@AdityaKumar I updated the answer – Martin Aug 10 '12 at 7:08

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