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Im trying to make a simple registration form using php with XAMPP(Apache and MYSQL).I'm currently having a problem with my password field which is currently displaying it's input as clear text, instead of hiding it from view.

?php
$regfields=array("remail"=>"Email","remail2"=>"Re-enter     Email","rusername"=>"Username","rpassword"=>"Password","rpassword2"=>"Re-enter Password","rbiz"=>"BizName","rdesc"=>"Desc");
?>

<html>
<body>
<h3>Registration</h3>
<form action="Login.php" name="RegisterForm" method="post" >
<table border="0">

<?php

if(isset($errormsg))
{
    echo"$errormsg";
}

foreach($regfields as $field=>$value)
{

    if($field!=="rdesc")
    {
        echo"<tr>";
        echo"<td>";
        echo"<label for='$field'>$value: </label>";
        echo"</td>";
        echo"<td>";
        echo"<input type='text' name='$field' size='40' maxlength='50' />    </td></tr>";

    }
    else if($field=="remail"||$field=="remail2")
    {
        echo"<tr>";
        echo"<td>";
        echo"<label for='$field'>$value: </label>";
        echo"</td>";
        echo"<td>";
        echo"<input type='text' name='$field' size='40' maxlength='50' /></td></tr>";

    }
    else if($field=="rpassword"||$field=="rpassword2")
    {
        echo"<tr>";
        echo"<td>";
        echo"<label for='$field'>$value: </label>";
        echo"</td>";
        echo"<td>";
        echo"<input type='password' name='$field' size='40' maxlength='50' /></td></tr>";

    }
    else
    {
        echo"<tr>";
        echo"<td>";
        echo"<label for=$field>$value: </label>";
        echo"</td>";
        echo"<td>";
        echo"<input type='text' name='$field' size='300' maxlength='300' style='width:400px;height:100px; \n'/>";
        echo"</td>";
        echo"</tr>";
    }
}

?>
</form>
</table>
<input type="submit" name="Button" value="Register" />
</body>
</html>

I suspect my problem stems from this line

echo"<input type='password' name='$field' size='40' maxlength='50' /></td></tr>";

where the input type is not registering due to the single quotes used, instead of double quotes causing the input type to be interpreted literally and not being used as a value?

I would appreciate any input on this. Thanks!

share|improve this question
    
Is this being shown in the input as plain text or after submission..? –  Daryl Gill May 29 '13 at 12:46
    
your closing form tag before table and submit is outside form. How will this work? –  Rahul11 May 29 '13 at 12:49
    
Try escaping this line echo"<input type='password' name='$field' with \" chars., see what that gives. –  Fred -ii- May 29 '13 at 12:50
    
@Fred There is no need to escape single quotes within a double quote echo.. The best you could do with escape is to have '".$field."' –  Daryl Gill May 29 '13 at 12:51
1  
@DarylGill My bad. ;-) –  Fred -ii- May 29 '13 at 12:55

2 Answers 2

up vote 2 down vote accepted

Ohhh check this out

below code is Executed All the time, except when the field is rdesc. So correct your code by removing ! from if($field!=="rdesc")

  if($field!=="rdesc")
    {
        echo"<tr>";
        echo"<td>";
        echo"<label for='$field'>$value: </label>";
        echo"</td>";
        echo"<td>";
        echo"<input type='text' name='$field' size='40' maxlength='50' />    </td></tr>";

    }
share|improve this answer
    
Well spotted - +1 –  allen213 May 29 '13 at 13:08
    
Arghhhh it was such a glaring mistake! Thanks for your help –  Kenneth .J May 29 '13 at 13:11

If you find the usage of single and double quotes confusing, try this

<?php
else if($field=="rpassword"||$field=="rpassword2")
    {?>

<tr>
    <td>
        <label for="<?php echo $field?>"><?php echo $value?>: </label>
        </td>
        <td>
        <input type="password" name="<?php echo $field?>" size='40' maxlength='50' /></td></tr>
<?php
    }?>

Its not considered as a good practie to echo HTML inside PHP

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