Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I just started a php sudoku solver program, where the main page has a form. Inside that form, a php include statements calls a function which draws the grid with the inputs that form the sudoku box. Below that in the HTML code, I put a input submit button. However, this is placed above the grid on the website, as shown http://shodor.org/~amalani/sudoku.php. Does anyone know why this is?

The main code is here

<html>
<head>
    <title>Sudoku Solver</title>
    <link rel='stylesheet' href='main.css' type='text/css'>

</head>
<body>
    <table>
        <form name='entry' method='POST' action='solve.php'>    
            <?php 
                include('grid.php');
            ?>
            <input type='submit' value='Submit!'></input>           
        </form>
    </table>
</body>
</html>

The CSS is here

td{
    border:1px solid black;
}input[type=number]{
    border:none;
    width:30px;
    height:30px;
}input[type=number]::-webkit-inner-spin-button,
input[type=number]::-webkit-outer-spin-button {
    -webkit-appearance: none;
    margin: 0;
}table{
    border-collapse:collapse;
}.xborder{
    border-bottom:3px solid black;
}.bothborder{
    border-bottom:3px solid black;
    border-right:3px solid black;
}.yborder{
    border-right:3px solid black;
}

and the grid drawer code is here

<?php 
    for ($x=1;$x<=9;$x++){
echo '

            <tr>';
        for ($y=1;$y<=9;$y++){
            $name=$x.''.$y;
            if(($y==3||$y==6)&&($x==3||$x==6)){
                echo "
            <td class='bothborder' ><input type='number' name='$name'></input></td>";
            }
            else if ($y==3||$y==6){
                echo "
                <td class='yborder' ><input type='number' name='$name'></input></td>";
            }
            else if ($x==3||$x==6){
                echo "
            <td class='xborder' ><input type='number' name='$name'></input></td>";
            }
            else{
                echo "

                <td><input type='number' name='$name'></input></td>";
            }
        }
echo '
            </tr>';
    }

    ?>

Thanks

share|improve this question
    
try moving the input field out of the form tag. in fact, move both the php script and the input tags out of the form tag. –  He Hui Mar 15 '13 at 1:40
    
<form> is not supposed to reside within <table> either. –  He Hui Mar 15 '13 at 1:41
    
thanks it worked –  scrblnrd3 Mar 15 '13 at 1:55

7 Answers 7

up vote 2 down vote accepted

Try moving the form element outside of the table.

<form name='entry' method='POST' action='solve.php'>    
    <table>
        <?php 
            include('grid.php');
        ?>
    </table>
    <input type='submit' value='Submit!'></input>           
</form>
share|improve this answer

You are generating invalid html: a form cannot be a direct child of a table element.

You should have the form encapsulate the table and move the button to below the table or put it in a row (and a column) below the grid inside the table:

<form name='entry' method='POST' action='solve.php'>  
    <table>  
        <?php 
            include('grid.php');
        ?>
    </table>
    <input type='submit' value='Submit!'></input>           
</form>
share|improve this answer

Simply place the <input type='submit' value='Submit!'></input> inside another <td></td>

share|improve this answer

You've put form inside of a table tag. You can't do that, it's in limbo. Do this.

<form>
    <table>
        ....
    </table>
    <input type="submit" />
</form>
share|improve this answer

Swap <form> and <table> like this:

<form name='entry' method='POST' action='solve.php'>    
    <table>
            <?php 
                include('grid.php');
            ?>
            <input type='submit' value='Submit!'></input>           

    </table>
 </form>
share|improve this answer

You could just leave it outside the table tag.

<input type='submit' value='Submit!'></input>

http://jsfiddle.net/8N6hE/

share|improve this answer

here's a simple example you cant put a <div> in a <p>, so if you do that your browser will modify your code

you cant put a div (block element) in a p (inline element)

so if you do

<p>
    <div>
    </div>
</p>

your browser will change the code to

<p>
</p>
<div>
</div>

or

<p>
</p>
<div>
</div>
<p>
</p>

so here it's the same with form and table, you should start your <form> before starting your <table>

all this to say that if you generate invalid html code the browser will edit your code

share|improve this answer
    
if you explain your answer further as to why the browser does so, i'll vote you up. –  He Hui Mar 15 '13 at 2:07
    
The browser does this because it can't interpret invalid html code, so it haves to make it valid before interpretation... if you try my example and look code with firebug you can see that firebug's code is different than html code –  Acuao Mar 15 '13 at 2:13
    
for example if you forget to close a </p> and if the browser didn't modify the code all the rest of the page would go into the <p> ... So the browser closes the <p> for you, but sometimes browsers modifications change the display, like in this case –  Acuao Mar 15 '13 at 2:20
    
this does not explain anything. why cant a <div> reside in a <p>, but a <h1> can reside within a <p> –  He Hui Mar 15 '13 at 2:58
    
<h1> can't reside in a <p> try it and check with firebug, the browser closes the <p> before starting the <h1> and restarts a <p> after... It's exactly the same that i told before with <p> and <div> –  Acuao Mar 15 '13 at 3:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.