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i am currently doing some simple calculator for a practice but it the output or result is not showing here is my code guys hope you can help me :/

    <input type="radio" value= "Addition" name="calcu"> Addition .<br />
    <input type="radio" value= "Subtraction" name="calcu"> Subtraction .<br />
    <input type="radio" value= "Multiplication" name="calcu"> Multiplication .<br />
    <input type="radio" value= "Division" name="calcu"> Division .<br />
<?php
$num1 = $_POST['num1'];
$num2 = $_POST['num2'];
$calcu = $_POST['calcu'];

    function calculate($n1,$n2)
    {
        switch('$calcu')
        {
        case "Addition";
            $compute = $n1 + $n2; 
            break;
        case "Subtraction";
            $compute = $n1 - $n2; 
            break;
        case "Multiplication";
            $compute = $n1 * $n2; 
            break;
        case "Division";
            $compute = $n1 / $n2; 
            break;
        }
    }
echo "$calcu <br /> <br /> 1st Number: $num1 <br /> 2nd Number: $num2 <br /><br />";
echo "Answer is:" .calculate($num1,$num2);
?>
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1  
You need to return $compute and echo calculate(...). But that's not the only problem in your code. –  str Feb 18 '13 at 13:32
    
what else sir? :O –  Christine Javier Feb 18 '13 at 13:38
1  
'$calcu' is not a variable, you would need to use $calcu but that is not be in the function's scope. Instead you have to use $_POST['calcu']. Also, you need to add a colon after case, not a semicolon. –  str Feb 18 '13 at 13:41
    
@str passing it as argument / parameter ? –  Muhammad Talha Akbar Feb 18 '13 at 13:44
    
@ChristineJavier One thing I forgot that to downvote (-1) this post because it does not show any research effort or is useful. –  Muhammad Talha Akbar Feb 18 '13 at 14:02

3 Answers 3

up vote 0 down vote accepted

Here is complete code:

<?php
$num1 = $_POST['num1'];
$num2 = $_POST['num2'];
$calcu = $_POST['calcu'];

    function calculate($n1,$n2, $calcu) // set $calcu as parameter
    {
        switch($calcu)
        {
        case "Addition": // here you have to use colons not semi-colons
            $compute = $n1 + $n2; 
            break;
        case "Subtraction":
            $compute = $n1 - $n2; 
            break;
        case "Multiplication":
            $compute = $n1 * $n2; 
            break;
        case "Division":
            $compute = $n1 / $n2; 
            break;
        }
        return $compute; // returning variable
    }
echo "$calcu <br /> <br /> 1st Number: $num1 <br /> 2nd Number: $num2 <br /><br />";
echo "Answer is:" .calculate($num1,$num2, $calcu); // you need to pass $calcu as argument of that function
?>
share|improve this answer
    
finally i didn't know about adding $calcu as parameter :D thank you so much ;) btw its Ma'am haha thanks! –  Christine Javier Feb 18 '13 at 13:54
    
I know, I am not blind. Thanks to Allah. But still my pleasure SIR :D wrote atleast first function of PHP today. –  Muhammad Talha Akbar Feb 18 '13 at 13:55

Change switch('$calcu') to switch($calcu). It should be this way.

But not only that. Your variables are undefined because you are trying to address them before form is submited, i.e they don't exist yet.

$num1 = $_POST['num1'];
$num2 = $_POST['num2'];
$calcu = $_POST['calcu'];

And there you address them

echo "$calcu <br /> <br /> 1st Number: $num1 <br /> 2nd Number: $num2 <br /><br />";
echo "Answer is:" .calculate($num1,$num2);

The right way to implement this is to check if form was submitted:

    <input type="radio" value= "Addition" name="calcu"> Addition .<br />
    <input type="radio" value= "Subtraction" name="calcu"> Subtraction .<br />
    <input type="radio" value= "Multiplication" name="calcu"> Multiplication .<br />
    <input type="radio" value= "Division" name="calcu"> Division .<br />
<?php
if (isset($_POST)){
    $num1 = $_POST['num1'];
    $num2 = $_POST['num2'];
    $calcu = $_POST['calcu'];

        function calculate($n1,$n2)
        {
            switch('$calcu')
            {
            case "Addition";
                $compute = $n1 + $n2; 
                break;
            case "Subtraction";
                $compute = $n1 - $n2; 
                break;
            case "Multiplication";
                $compute = $n1 * $n2; 
                break;
            case "Division";
                $compute = $n1 / $n2; 
                break;
            }
        }
    echo "$calcu <br /> <br /> 1st Number: $num1 <br /> 2nd Number: $num2 <br /><br />";
    echo "Answer is:" .calculate($num1,$num2);

    unset($_POST);
}
?>
share|improve this answer

Change switch('$calcu') to switch($calcu).

As @PeterM mentioned, you are accessing variable $calcu out of scope. Either you pass the $calcu variable to fun calculate or access directly by $_POST array.

use switch($_POST['calcu']).

OR

function calculate($n1,$n2, $calcu) {
...
}

Call the fun by calculate($n1,$n2, $calcu).

share|improve this answer
1  
$calcu is not in function scope –  PeterM Feb 18 '13 at 13:33
    
it says undefined variable on every case sir –  Christine Javier Feb 18 '13 at 13:35
    
@PeterM Thanks for noticing the variable scope in fn. –  Justin John Feb 18 '13 at 13:43
    
@Justin already tried switch($_POST['calcu']) but nothing shows :/ –  Christine Javier Feb 18 '13 at 13:45
    
@ChristineJavier you have much errors in the code e.g. Syntax. –  Muhammad Talha Akbar Feb 18 '13 at 13:46

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