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I wil create a simple program that is somewhat similar to xampp phpmyadmin wherein the creation of database, creation of table structure is dynamic using forms. I tried to make their names dynamic so that i could loop them.

<?php $b =1; ?>

Field:<input name="field$b" type="text" /></br>

When i submit the form, the value of the form is null. Here's the code after the sumbitting of form

    $a = 1;

    $tblField = $_POST['field$a'];

    echo "field name : ".$tblField;

The output is

field name : 

I'm not sure if what i did is right, in using a variable in the name of forms. but that is the only way i think i could do so that i could make the creation of table columns dynamic..

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Is this the actual code? Because you can't use a PHP variable without opening PHP tags. –  Mido Mar 30 '13 at 8:52
1  
<input name="field<?php echo $b ?>" type="text" /> –  tuffkid Mar 30 '13 at 8:52
    
try to use Double Quote, but it is a strange way to do it. –  Guy Mar 30 '13 at 8:52
    
better to store filedname in tables as it is dynamic, it will be beneficial for you in future enhancement. –  Suresh Kamrushi Mar 30 '13 at 8:55

4 Answers 4

up vote 3 down vote accepted

What is the $ doing in Field:<input name="field$b" type="text" /></br> ?? If you are going to include the dollar sign $ in your input name's field, then the whole code must be encapsulated in the php tags.

like this: <?= 'Field:<input name="field$b" type="text" /></br>'; ?> otherwise, it won't work

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<?= ?> should always be avoided. <?php echo ?> is the way to go –  bad_boy Mar 30 '13 at 13:22

Un-escaped variables inside single quota will be treated as text:

$tblField = $_POST['field$a'];

To:

$tblField = $_POST["field$a"];

See php NoOb's answer also

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Something like:

<?php  $b =1;  
echo "Field:<input name=\"field$b\" type=\"text\" /></br>"; 
?>

?

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It's seems like you forgot to use double quotes instead of single quotes.

$_POST["field$a"];

instead of

$_POST['field$a'];
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