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I have this form with which I am trying to take some user entered variables and pass them to calculate.php for counting and showing the result.

calculate.html

<HTML>
<HEAD>
<TITLE>Calculation Form</TITLE>
</HEAD>
<BODY>
<FORM METHOD="POST" ACTION="calculate.php">
<P>Value 1: <INPUT TYPE="text" NAME="vall" SIZE=10></P>
<P>Value 2: <INPUT TYPE="text" NAME="val2" SIZE=10></P>

<P>Calculation:<br>
<INPUT TYPE="radio" NAME="calc" VALUE="add"> add<br>
<INPUT TYPE="radio" NAME="calc" VALUE="subtract"> subtract<br>
<INPUT TYPE="radio" NAME="calc" VALUE="multiply"> multiply<br>
<INPUT TYPE="radio" NAME="calc" VALUE="divide"> divide</P>


<P><INPUT TYPE="submit" NAME="submit" VALUE="Calculate"></P>

</BODY>
</HTML>

calculate.php:

        <?
if (($_POST["vall"] == "") || ($_POST["val2"] == "") || ($_POST["calc"] =="")) {
    header("Location: http://localhost/calculate.html");
exit;
}

if ($_POST["calc"] == "add") {
   $result = $_POST["vall"] + $_POST["val2"];
} else if ($_POST["calc"] == "subtract") {
   $result = $_POST["vall"] - $_POST["val2"];
} else if ($_POST["calc"] == "multiply") {
   $result = $_POST["vall"] * $_POST["val2"];
} else if ($_POST["calc"] == "divide") {
   $result = $_POST["vall"] / $_POST["val2"];
}

?>

<HTML>
<HEAD>
<TITLE>Calculation Result</TITLE>
</HEAD>
<BODY>

<P>The result of the calculation is: <? echo $result; ?></P>

</BODY>
</HTML>

can anybody say where is my mistake as I get only the: The result of the calculation is:

share|improve this question
2  
Use quotes for the array index, like $_POST['calc'], and first check if you actually have a POST request. Also, you should always have errors enabled and displayable – Damien Pirsy Nov 17 '12 at 11:25
    
" you should always have errors enabled and displayable" - you mean I should implement in my code to always show errors? – funguy Nov 17 '12 at 11:30
    
In your development environment, yes, on production, no (just log them instead). I refer to language erros, not UX messages. Never develop without being shown, in a way or another (output on the screen, log file, whatever), any warning/error (like an "Undefined constant 'val1', assuming 'val1' on line....") – Damien Pirsy Nov 17 '12 at 11:32
up vote 0 down vote accepted

Could just a mistype here, but - besides all that everyone else said, you forgot to close the </form> tag

<INPUT TYPE="radio" NAME="calc" VALUE="divide"> divide</P>

<P><INPUT TYPE="submit" NAME="submit" VALUE="Calculate"></P>

</FORM> <!-- MISSING -->

</BODY>

I would also check for a POST request before processing:

if ($_SERVER['REQUEST_METHOD'] == 'POST')
{
   // do your stuff
}
share|improve this answer
    
Omg!!! Will this really cause an issue? Didn't know that! – Praveen Kumar Nov 17 '12 at 13:30

You missed "s in array index in all the $_POST[], so you need to add "".

<?
if (($_POST["vall"] == "") || ($_POST["val2"] == "") || ($_POST["calc"] =="")) {
    header("Location: http://localhost/calculate.html");
exit;
}

if ($_POST["calc"] == "add") {
   $result = $ POST[vall] + $_POST[val2];

} else if ($_POST["calc"] == "subtract") {
   $result = $_POST["vall"] - $_POST["val2"];
} else if ($_POST["calc"] == "multiply") {
   $result = $_POST["vall"] * $_POST["val2"];
} else if ($_POST["calc"] == "divide") {
   $result = $_POST["vall"] / $_POST["val2"];
}

?>
share|improve this answer
    
I updated the code, but it seems it was not the case. – funguy Nov 17 '12 at 11:39

These $_POST[vall] need to be $_POST['vall']. The string literal vall is the key.

share|improve this answer
    
Indeed that is incorrect usage as The key can either be an integer or a string. (PHP Arrays Docs), but not necessarily the problem here, as PHP automatically tries to convert a missing constant name to a string and throws a notice: Notice: Use of undefined constant val1 - assumed 'val1' – Bogdan Nov 17 '12 at 11:37
    
I updated the code, but it seems it was not the case with the "" as I still have no errors and no result displayed. – funguy Nov 17 '12 at 11:43

You have a mistake on line 8 in your calculate.php:

$result = $ POST[vall] + $_POST[val2];

should be:

$result = $_POST["vall"] + $_POST["val2"];

And take into account previous answers

share|improve this answer
    
I noticed it. Thanks! But still I have no result. – funguy Nov 17 '12 at 11:39

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