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i have trouble adjusting WHERE variables in this sql .

everytime i get this error

.Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource

     $sql3= mysql_query("SELECT COUNT($ww) FROM data WHERE $".$ww." =  ".$weeknumber." "); 

is there some suggests to fix this ?

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2  
Why is there an extra dollar sign just after WHERE? –  Crontab Apr 6 '12 at 17:58
    
Do you know what the variables .$ww. and .$weeknumber are evaluating to at runtime? –  contactmatt Apr 6 '12 at 17:59
    
this extra dollar is to make it as variable , koz $ww is echoing the rows title in table . –  echo_Me Apr 6 '12 at 18:01
    
$weeknumber is number of weeks stored in the table rows . –  echo_Me Apr 6 '12 at 18:02

5 Answers 5

up vote 1 down vote accepted

Why don't you count the table column by putting the columns name in your COUNT(column_name)?

Like so:

$sql3= mysql_query("SELECT COUNT(week_num) as wknum FROM data WHERE '$ww' =  '$weeknumber'"); 
$counted_weeks["week_num"]

// $counted_weeks["week_num"] will output your sum
//week_num would be a column name from your "data" table
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yes it outputs the sum of rows and yes i have counting the cloumns name but the problem is after WHERE. i have result like that week3 ---2 , and week3---- 2 , so i want to get only one week3 –  echo_Me Apr 6 '12 at 19:14
    
ok i get it work thx –  echo_Me Apr 8 '12 at 18:18

I recommend looking at this link. As @Crontab mentioned I am not sure why you have a dollar sign in front of your where clause.

A couple other things to point out: As it says in the link, you will need to make sure the query text is properly escaped. Also, If I'm not mistaken (not familiar with PHP) do you need to explicitly concatenate the text instead of just using quotes? (i.e. instead of "SELECT ... " ... " do you need to do "SELECT ... " + " ... ")

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php string formatting is perfect here, take your messy confusing concat string and make it clean and readable!

$sql3= mysql_query(sprintf("SELECT COUNT(%s) FROM data WHERE %s=%d", $ww, $ww, $weeknumber));
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not working :(. –  echo_Me Apr 6 '12 at 18:24

Assuming that $ww is a valid column name and $weekNumber is an integer, this should work:

$query = "SELECT COUNT(*) AS cnt FROM data WHERE $ww = '$weekNumber'";
$rs = mysql_query($query);
$r = mysql_fetch_assoc($rs);
echo "Count: {$r['cnt']}";
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I think $ww is a variable whose value is a column name –  Baz1nga Apr 6 '12 at 18:14
    
error mysql_fetch_assoc(): supplied argument is not a valid MySQL result resource –  echo_Me Apr 6 '12 at 18:31

I am guessing $ww is referring to a column name. $weekNumber is obviously the value. In that case, your SQL query should look like this:

$sql3= mysql_query("SELECT COUNT(".$ww.") FROM data WHERE ".$ww." = ".$weeknumber." ");

I'm not a PHP guy, but I'm assuming you have the correct PHP syntax.

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yes its coloumnname but your code didnt work and didnt count now at all –  echo_Me Apr 6 '12 at 18:07
    
can you assign the query to a string and tell me the output of it.. something like $sqlToRun="SELECT COUNT(".$ww.") FROM data WHERE ".$ww." = ".$weeknumber." "; tell me the value in $sqlToRun –  Baz1nga Apr 6 '12 at 18:12
    
and also make sure you have a table data with data in it.. :/ –  Baz1nga Apr 6 '12 at 18:13
    
yes there is data in it :) , but your counting didnt work , it output 0 –  echo_Me Apr 6 '12 at 18:32
    
you still did not tell the generated query as I asked –  Baz1nga Apr 6 '12 at 18:33

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