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I'm trying to make a simple web application that adds scores from a physical game such as Scrabble. Most of the code is a HTML form, asking for one input per form element. It then puts the data generated from the form and initializes the appropriate variables. The one part I can't figure out is how to add the new score to the last score. I tried to add variables, like $lastScore, but that didn't seem to work either. Does anyone have any suggestions?

<?php
//Gets data from HTML form
$addScore1 = $_REQUEST['addScore1'];
$addScore2 = $_REQUEST['addScore2'];

//Generates HTML form
echo "<!DOCTYPE html>

<html>

<head>
<title>Score Add</title>
</head>

<body>
<div id=\"displayNames\">

    <p>
    $player1
        <form method=\"post\" action=\"\">
            <label for=\"addScore1\">Enter your score:</label>
            <input type=\"text\" name=\"addScore1\" id=\"addScore1\" />


            <input type=\"submit\" />
        </form>
    </p>

    <p>
    $player2
        <form method=\"post\" action=\"\">
            <label for=\"addScore2\">Enter your score:</label>
            <input type=\"text\" name=\"addScore2\" id=\"addScore2\" />

            <input type=\"submit\"/>
        </form>
    </p>
</div>
</body>

</html>";


?>

Thanks,

Max 

share|improve this question
    
Please clear some ambiguities: ... Most of the code is a HTML form (I couldn't find where you used any PHP code in the html form), asking for one input per form element (What kind of input? integers I guess). It then puts the data generated from the form (to where) and initializes the appropriate variables (Match inputs to variables). The one part I can't figure out is how to add the new score to the last score. I tried to add variables, like $lastScore (Where is this from?), but that didn't seem to work either. ... any suggestions? Not Yet! –  Steward Godwin Jornsen Mar 3 '13 at 23:56

2 Answers 2

up vote 0 down vote accepted

On submit, the script is calling itself and loses all the variables. You need to store their current score, e.g. in the session, in a database, or in a hidden field in the form.

With hidden field in your form:

<form method="post" action="">
    <label for="addScore1">Enter your score:</label>
    <input type="text" name="addScore1" id="addScore1" />
    <--! the addition is done in the next line in value-->
    <input type="hidden" name="oldScore1" id="oldScore1" value="<?=($oldscore1 + $addScore1)?>" />
    <input type="submit" />
</form>

Do the same with your second form --> oldScore2 etc...
At the top of your script, read the oldscore from $_REQUEST

//Gets data from HTML form
$addScore1 = $_REQUEST['addScore1'];
$addScore2 = $_REQUEST['addScore2'];
$oldScore1 = $_REQUEST['oldScore1'];
$oldScore2 = $_REQUEST['oldScore2'];

// as alternative, do the addition here:
$oldScore1 += $addScore1;
$oldScore2 += $addScore2;
share|improve this answer
    
Here's the full comment (sorry for the confusion): Thanks! Your code works, but now I have another question: how do I then add them? I tried at the bottom of the code; right after the closing HTML tag, such as: echo $addScore1 + $oldScore1; but it doesn't add them. It just displays the score I just entered. Any other ideas? (I'm really kind of new to this :) ) Thanks, Max  –  Max Isom Mar 3 '13 at 23:52
    
Sorry, I posted that comment before I was done. –  Max Isom Mar 3 '13 at 23:54
    
@MaxIsom: edit the code in your question and show me where you display the score, pls –  michi Mar 3 '13 at 23:54
    
....</div> </body> </html>"; echo $addScore1 + $oldScore1; ?> –  Max Isom Mar 3 '13 at 23:55
    
There, it's added for you. <input type="hidden" name="oldScore1" id="oldScore1" value="<?=($oldscore1 + $addScore1)?>" />. Next Step: You do know how to use what's been added. Most recent score would be in the hidden field. Else do your adding where the variables are declared so you could use the sum in subsequent codes. –  Steward Godwin Jornsen Mar 4 '13 at 0:01

Rewriting your code as a whole, try it:

I edited all those <?php=$somevalue?>because they don't seem to work with your PHP-setup, and replaced them with <?php echo $somevalue> ?>... let me know how it works...

<?php
// Get data from HTML form. $_POST is fine, because form method is set to POST.
$addScore1 = $_POST['addScore1'];
$addScore2 = $_POST['addScore2'];
$oldScore1 = $_POST['oldScore1'];
$oldScore2 = $_POST['oldScore2'];

// if these are numeric values, add them up
if (is_numeric($addScore1) && is_numeric($oldScore1)) $oldScore1 += $addScore1;
if (is_numeric($addScore2) && is_numeric($oldScore2)) $oldScore2 += $addScore2;

// Generate HTML form -- in HTML, much to complicated in PHP, unless it is necessary for sth else
?>
<html>
    <head>
        <title>Score Add</title>
    </head>

    <body>
        <div id="displayNames">   
            <p><?php echo $player1; ?> current score: <?php echo $oldScore1; ?>
            <form method="post" action="">
                <label for="addScore1">Enter your score:</label>
                <input type="text" name="addScore1" id="addScore1" />
                <input type="hidden" name="oldScore1" id="oldScore1" value="<?php echo $oldscore1; ?>" />
                <input type="submit" />
            </p>

            <p><?php echo $player2; ?> current score: <?php echo $oldScore2; ?>
                <label for="addScore2">Enter your score:</label>
                <input type="text" name="addScore2" id="addScore2" />
                <input type="hidden" name="oldScore2" id="oldScore2" value="<?php echo $oldscore2; ?>" />
                <input type=\"submit\"/>
            </form>
            </p>
        </div>
    </body>
</html>
share|improve this answer
    
It looks like it should work, but it still doesn't! I don't know why, everything looks right. Here's the error: Parse error: syntax error, unexpected '=' in /home/ripdvdx1/public_html/scoregen.php on line 21 I re-hosted the file, so you can check it out yourself. Again, thanks for helping me! - Max  –  Max Isom Mar 4 '13 at 0:39
    
see my edit... welcome :-) –  michi Mar 4 '13 at 0:40
    
Please access my working setup at: ripdvd.x10.mx/index.php Maybe from there you can debug. I sure can't! –  Max Isom Mar 4 '13 at 1:02
    
@MaxIsom: I can't see the php, only the HTML generated from it on your site. seems that PHP is not delivering the values to the HTML... pls insert <?php echo phpinfo(); ?> in your script after the <body>, and upload it to your server... –  michi Mar 4 '13 at 1:09
    
When I try to view it, an error gives way: Warning: phpinfo() has been disabled for security reasons –  Max Isom Mar 4 '13 at 1:59

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