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i got Error: Unknown column 'Array' in 'field list' when trying to execute the process..I'm still new to php so i would like to know what is the problem with my coding.

this is the coding first.

<?php
include("dbconnect.php");


$q = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'pants' ");
if(is_resource($q) and mysql_num_rows($q)>0)
{
    $r = mysql_fetch_array($q);
    $r["bachok_qtt"];
}

$w = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'clothes' ");
if(is_resource($w) and mysql_num_rows($w)>0)
{
    $s = mysql_fetch_array($w);
    $s["bachok_qtt"];
}       

$e = mysql_query("SELECT stock_qtt FROM stock WHERE stock_type = 'pants' ");
if(is_resource($e) and mysql_num_rows($e)>0)
{
    $a = mysql_fetch_array($e);
    $a["stock_qtt"];
}    

$t = mysql_query("SELECT stock_qtt FROM stock WHERE stock_type = 'clothes' ");
if(is_resource($t) and mysql_num_rows($t)>0)
{
    $b = mysql_fetch_array($t);
    $b["stock_qtt"];
}    


if ($r < $a)
{
    if($s < $b)
    {
        $sql1 = "UPDATE stock SET stock_qtt = stock_qtt - $r  WHERE stock_type = 'pants' ";
        $sql2 = "UPDATE stock SET stock_qtt = stock_qtt - $s  WHERE stock_type = 'clothes' ";

        $result1 = mysql_query($sql1) or die ("Error: " . mysql_error());
        $result2 = mysql_query($sql2) or die ("Error: " . mysql_error());

        if($result1)
        {
            if($result2)
            {
            echo "Successful";
            echo "<br>";
            echo "<a href='admin2.php'>Back to main page</a>";
            }
        }
        else 
        {
            echo "ERROR";
        }
    }
}
else
{
    echo "Not enough stock";
    echo "<br>";
    echo "<a href='admin2.php'>Back to main page</a>";
}




?> 

So, why does it throw unknown column array when executed..Hav I used MySQL_fetch_array() correctly?

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closed as too localized by Jocelyn, nalply, Sumit Singh, IronMan84, Soner Gönül Apr 23 '13 at 13:39

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

4 Answers 4

up vote 0 down vote accepted

I think you can look at $r["bachok_qtt"]; perhaps you wanted to say something like $r = $r["bachok_qtt"];

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thanks all but i have solve it by doing like u said..mr Ashwini has corrected me before..thanks..^^ –  Nama Saya Din Apr 24 '13 at 2:32

Problem is here..

$sql1 = "UPDATE stock SET stock_qtt = stock_qtt - $r  WHERE stock_type = 'pants' ";
$sql2 = "UPDATE stock SET stock_qtt = stock_qtt - $s  WHERE stock_type = 'clothes' ";

Both $r and $s are array.

I think you are trying to do this..

$r = mysql_fetch_array($q);
$r = $r["bachok_qtt"];
share|improve this answer
    
it works.. thanks sir..so it means that when i type $r = $r["bachok_qtt"]; so the variable would be int? –  Nama Saya Din Apr 23 '13 at 9:52
    
@AshwiniAgarwal not quite. The data type in MySQL is not converted in PHP. Don't forget that PHP is a weakly-typed language... –  BenM Apr 23 '13 at 9:57
    
@BenM. then he must convert the variable to int. –  Ashwini Agarwal Apr 23 '13 at 9:59
    
Again, not necessarily. –  BenM Apr 23 '13 at 9:59
    
then..?? what if the variable contains string? –  Ashwini Agarwal Apr 23 '13 at 10:00

Your problem is that you define $r as an array, and then try to use it in a string. Looking over your code, I actually suspect that you wish to assign the value of $r["bachok_qtt"] to a variable, and then use it inside your query.

For example the following code doesn't do anything:

$r["bachok_qtt"];

You should update your code as follows:

$q = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'pants' ");
if(is_resource($q) and mysql_num_rows($q)>0)
{
    $r = mysql_fetch_array($q);
    $bachok_qtt = $r["bachok_qtt"];
}

$w = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'clothes' ");
if(is_resource($w) and mysql_num_rows($w)>0)
{
    $s = mysql_fetch_array($w);
    $bachok2 = $s["bachok_qtt"];
}    

And then your SQL as follows:

$sql1 = "UPDATE stock SET stock_qtt = stock_qtt - $bachok_qtt  WHERE stock_type = 'pants' ";
$sql2 = "UPDATE stock SET stock_qtt = stock_qtt - $bachok2  WHERE stock_type = 'clothes' ";

You should also be advised that the mysql_* family of functions are now in the process of deprecation, and will be invalid shortly. Instead of using them in new code, you should look into the use of MySQLi or PDO. Not only do they bring the benefits of longevity to the table, but they also remove some of the security risks of using mysql_*.

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thanks a lot mr BenM.. i am a beginner in php and trying to learn this by myself actually.. –  Nama Saya Din Apr 24 '13 at 2:34

here you go i fixed your erros . try this

 <?php
 include("dbconnect.php");


 $q = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'pants' ");
 if(is_resource($q) and mysql_num_rows($q)>0)
 {
  $r = mysql_fetch_array($q);

  }

 $w = mysql_query("SELECT bachok_qtt FROM bachok WHERE bachok_type = 'clothes' ");
 if(is_resource($w) and mysql_num_rows($w)>0)
 {
  $s = mysql_fetch_array($w);

 }       

 $e = mysql_query("SELECT stock_qtt FROM stock WHERE stock_type = 'pants' ");
 if(is_resource($e) and mysql_num_rows($e)>0)
 {
  $a = mysql_fetch_array($e);

 }    

 $t = mysql_query("SELECT stock_qtt FROM stock WHERE stock_type = 'clothes' ");
 if(is_resource($t) and mysql_num_rows($t)>0)
 {
 $b = mysql_fetch_array($t);

 }    


 if ($r["bachok_qtt"] < $a["stock_qtt"])
 {
 if($s["bachok_qtt"] < $b["stock_qtt"])
 {
    $sql1 = "UPDATE stock SET stock_qtt = stock_qtt - '".$r["bachok_qtt"]."'  WHERE stock_type = 'pants' ";
    $sql2 = "UPDATE stock SET stock_qtt = stock_qtt - '".$s["bachok_qtt"]."'  WHERE stock_type = 'clothes' ";

    $result1 = mysql_query($sql1) or die ("Error: " . mysql_error());
    $result2 = mysql_query($sql2) or die ("Error: " . mysql_error());

    if($result1)
    {
        if($result2)
        {
        echo "Successful";
        echo "<br>";
        echo "<a href='admin2.php'>Back to main page</a>";
        }
    }
    else 
    {
        echo "ERROR";
    }
 }
 }
 else
 {
 echo "Not enough stock";
 echo "<br>";
 echo "<a href='admin2.php'>Back to main page</a>";
 }

  ?> 
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