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I got my question :D it was about $_POST using my id that couldn't be accessed in insert submit button I inserted hidden in if statement of my id

if(array_key_exists('myid',$_POST))
{

$query1="select * from patient where id=".$_POST['myid'];
$result1=mysql_query($query1);
echo $query1;
//var_dump($_POST['myid']);
$num2=Mysql_num_rows($result1);
$num3=Mysql_num_fields($result1);
//clinical file ro neshun mide
        if($num2>0)
        {
        echo "<table border=2>";
        for($i=0;$i<$num2;$i++)
        {
        $row=mysql_fetch_row($result1);


        echo"<td>id</td><td>name</td><td>Lastname</td><td>Info</td><td>Sympthoms</td><td>Diagnosis</td>";
        echo "<tr>";
        for($j=0;$j<$num3;$j++)
        {
        echo"<td>$row[$j]</td>";    
        }
        echo"</tr>";
        }//for
        echo"</table>";
        $y=$_POST['myid'];
        echo"<input type='hidden' name='negin' value='$y'>";
        }//if


//showing pharmacies($_POST['ph']):
    $query2="select * from pharmacies";
    $result2=mysql_query($query2);
    $nump=Mysql_num_rows($result2);

    echo "Please Select a Pharmacy:<select ID=2 name='ph'>";
    echo"<option >select please";
    for($i=0;$i<$nump;$i++)
    {
    $row=mysql_fetch_row($result2); 
    echo"<option value=$row[1]>$row[1]";
    echo"</option>";
    }
echo"</SELECT>";

//showing drugs($_POST['dg']):
$query2="select * from pharmacy";
$result2=mysql_query($query2);
$nump=Mysql_num_rows($result2);

echo "Please Select Drug:<select ID=1 name='dg'>";
echo"<option >select please";
for($i=0;$i<$nump;$i++)
{
$row=mysql_fetch_row($result2); 
echo"<option  >$row[0]";
echo"</option>";
}
echo"</SELECT>";    

echo"<b>Quantity:<input type='text' name='txt1'/>";
echo"<input type='submit' name='insert' value='insert this drug'/>";

}//ifmyid

if(array_key_exists('insert',$_POST))
{
    echo "HELLO";
    $negin=$_POST['negin'];
    $qname="select * from pnt where id='$negin'";

    $resname=mysql_query($qname);
    $rown=mysql_fetch_row($resname);
    echo $qname;
    $na=$rown[1];
    mysql_real_escape_string ($_POST['dg']);
    mysql_real_escape_string ($_POST['txt1']);
    mysql_real_escape_string ($_POST['ph']);
    mysql_real_escape_string ($na);
    $ins="insert into request(drug,qty,ph,situation,Doctor,userp)values('".$_POST['dg']."',".$_POST['txt1'].",'".$_POST['ph']."','underprocess','$uname','$na')";
    echo $ins;
    $rlt=mysql_query($ins);
    //showing prescribe(table request)
    $in="select * from request";
    $rslt=mysql_query($in);
    $num2=Mysql_num_rows($rslt);
    $num3=Mysql_num_fields($rslt);  
        if($num2>0)
        {
        echo "<table border=2>";
        echo"<td>id</td><td>drug</td><td>quantity</td><td>Doctor</td><td>explanation</td><td>pharmacy</td>";
        for($i=0;$i<$num2;$i++)
        {
        $row=mysql_fetch_row($rslt);
        echo "<tr>";
        for($j=0;$j<$num3;$j++)
        {
        echo"<td>$row[$j]</td>";    
        }
        echo"</tr>";
        }//for
        echo"</table>";
        }//if$num2
}
share|improve this question
9  
The question is not clear –  zerkms Jun 3 '11 at 4:41
    
so what value do you have in sub3? or is it just a button –  Ibu Jun 3 '11 at 4:44
1  
in your "code", i dont see a reason to not use a hidden input field. this is the way to do it. –  Rufinus Jun 3 '11 at 4:45
    
$_POST['myid'] that I echoed in sub3 will be set when I click the myid submit button and i have another submit button with name of insert I want to maintain the value of $_POST['myid'] when going to array_key_exists('insert',$_POST) if statement –  Nickparsa Jun 3 '11 at 4:46
    
@Rufinus how i must use input type=hidden in where? and what will be the value of this hidden? –  Nickparsa Jun 3 '11 at 4:47

1 Answer 1

Using two submit buttons in same form

is that your question ? i am not sure . if it is then simple !

<form name="xx" method="post">
<input type="submit" name="submit1" value="1" />
<input type="submit" name="submit2" value="2" />
</form>

step 1 : Add submit buttons with same name in your form .

if($_POST['submit1']=="1")
{
echo "form submited using first submit button";
}

if($_POST['submit2']=="2")
{
echo "form submited using second submit button";
}

step 2 : get values in do different sections . Then you can do different work for each buttons

I think it helps !

share|improve this answer
    
NO,I think it can't I have if(array_key_exists('myid',$_POST)) too that I did some work in there I can't use the same name. –  Nickparsa Jun 3 '11 at 5:02
    
then use different name check my edit.let me know why you using array_key_exists function any particulars. –  gowri Jun 3 '11 at 5:15
    
Do you want to see the whole code? –  Nickparsa Jun 3 '11 at 5:17
    
here you are:pastebin.com/s9vmsaf1 –  Nickparsa Jun 3 '11 at 5:24
    
I found it my self:D I'm very happy! I used hidden type in if(array_key_exists('myid',$_POST)) –  Nickparsa Jun 3 '11 at 5:54

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