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I'm working on outputting data from two different sources into an HTML table. One source is a mysql_fetch_array, the other is a $_POST array. There are three <td> tables from mysql and one from $_POST outputting via a while loop. To associate the arrays on the output page, I planned to store the $_POST data in the table via the row id and then query the whole row further down the page.

The issue I have is that I can't seem to get the $_POST array values UPDATED into the row correctly. The last value in the $_POST array is all what's stored in all selected fields.

The input page arrays are captured with id [ ] and unit_ass[ ] and are passed to the output page.

The output page code:

require_once ("../includes/db_connect.inc");

    $pid = array_filter($_POST['id']);
    $gid = implode(",", $pid);

    $sua = array_filter($_POST['unit_ass']);

    foreach($sua as $value) echo $value . "<br>"; // this outputs correct values in the correct order.

    foreach($sua as $value) mysql_query("UPDATE $tbl_name SET unit_ass='$value' WHERE id IN ( $gid )"); 

Just stripping empty keys with array_filter() ... When I echo the values in the first foreach statement, they are displayed correctly and in correct order.

However, only the last value from the $sua array is updating the table rows as determined by $gid. The foreach isn't iterating the array values and performing the UPDATE as it should. The data via id[ ] is displayed correctly further down the page via a mysql_fetch-array in a while loop.

I've been staring at this for several hours now and can't seem to find the solution. Any help is appreciated.

share|improve this question
    
you want to update value unit_ass of each row whose id is in $gid to corresponding value in $sua? –  Bao Nhan Jan 21 '12 at 4:49
    
If this is your complete code sample, then you need to define $tbl_name. –  hafichuk Jan 21 '12 at 4:57
    
All of the database connection stuff along with $tbl_name is contained in the require_once file at the top. –  Thestudiokid Jan 21 '12 at 4:58
    
FYI, you're susceptible to an SQL injection attack with this query, and should look at escaping $value. –  hafichuk Jan 21 '12 at 4:59
1  
Just so were clear, you're SQL is updating each row listed in $gid every time. If you're intent it so update a single row (instead of all of them), then you need to change your where clause. –  hafichuk Jan 21 '12 at 5:04

2 Answers 2

foreach($sua as $key => $value){
    $value = mysql_escape_string($value);
    $id = mysql_escape_string ($pid[$key]);
    mysql_query("UPDATE $tbl_name SET unit_ass='$value' WHERE id='$id'");
}
share|improve this answer
    
Vulnerable to SQL injection –  Charlie Somerville Jan 21 '12 at 7:25
    
Yes it is. I'm solving the logic error raised by the question. Escaping can be done outside of this code. –  Bao Nhan Jan 21 '12 at 7:57
    
modified the code to escape inputs... –  Bao Nhan Jan 21 '12 at 8:12

Well, I believe $gid = implode(",", $pid); will give one value (consider as 1)

Now suppose $sua = array_filter($_POST['unit_ass']); give you ABC, PQR, LMN.

so your query will be executed like this

 mysql_query("UPDATE $tbl_name SET unit_ass='ABC' WHERE id='1'");
 mysql_query("UPDATE $tbl_name SET unit_ass='PQR' WHERE id='1'");
 mysql_query("UPDATE $tbl_name SET unit_ass='LMN' WHERE id='1'");

as your $gid is same through-out, you are seeing Only last update... Hope you got your mistake...

I believe you also want to change gid. For that check @Bao Nhan answer, that might help you as well!!!

Update :

Use below code... It will work now...

require_once ("../includes/db_connect.inc");

$sua = array_filter($_POST['unit_ass']);

 foreach($sua as $myKey => $value) {
     $myID = $pid[$myKey];
     mysql_query("UPDATE $tbl_name SET unit_ass='$value' WHERE id='$myID'");
 }

Good Luck!!!

share|improve this answer
    
Actually implode(",", $pid); returns a string of comma separated values containing the ids of the selected rows from the input page. –  Thestudiokid Jan 21 '12 at 5:19
    
hey u there?? I was out and now I am back... –  Fahim Parkar Jan 21 '12 at 6:44
    
Use this foreach($sua as $value) echo gid and let me know what you get... This will solve my problem. If you are getting 1, 2, 3 then problem is solved. –  Fahim Parkar Jan 21 '12 at 6:47
    
if you are getting value as 1 , 2, 3 then see my updated answer... –  Fahim Parkar Jan 21 '12 at 6:51
    
Vulnerable to SQL injection –  Charlie Somerville Jan 21 '12 at 7:25

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