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I am new to PHP. My isset function is not working .It does not not show error .It always insert the table. I have given my code. Kindly advice what i done wrong on this

<?php
if(isset($_POST['submit'])) {
    $a= $_POST['companyname'];
    $b= $_POST['ballpark_url'];
    $c= $_POST['username'];
    $d= $_POST['email'];
    $e= $_POST['login1'];
    $f= $_POST['pass'];
    $error = false;
    if(validname($a) ==false) {
        echo $nameerror = "enter the valid name";
    }
    if(validemail($d) ==false) {
        echo $nameerror = "enter the valid email";
    }
    if(isset($_POST['companyname'])) {
        if($error==false) {
            $query= "INSERT INTO user VALUES ('$a','$b','$c','$d','$e','$f','');";
            if(!mysql_query($query)) {
                die ('error:'.mysql_error());
            }
            mysql_close($conn);  
        }
        include("templats/header_1.html");
        include("templats/content.html");
        include("templats/footer.html");
    }
?>

kindly rectify the issue in my code and send back to me...

share|improve this question
    
Check $_POST array. Is 'submit' element exists in it? –  plutov.by Aug 18 '11 at 6:46
1  
@Marc Towler: That's definitely the answer. Post it! ;) –  Shef Aug 18 '11 at 6:50
    
1. isset() is not a function. 2. Why would you expect any kind of error here? Please show us your form. –  Mchl Aug 18 '11 at 6:51

4 Answers 4

Following on from Garvey, if it doesnt exist, then check in your HTML that you have set a submit button with the name submit...... (thanks shef for saying to post it ;))

share|improve this answer

He didn't set the $error variable to true, so it is always inserting.

$error = false;
if(validname($a) ==false) {
    echo $nameerror = "enter the valid name";
}
if(validemail($d) ==false) {
    echo $nameerror = "enter the valid email";
}

This is how it needs to be done

$error = false;
if(validname($a) ==false) {
    echo $nameerror = "enter the valid name";
    $error = true;
}
if(validemail($d) ==false) {
    echo $nameerror = "enter the valid email";
   $error = true;
}
share|improve this answer

Check if you have a line in your form like

 <input type="submit" name="submit" value="submitOrSomething">

Your isset checks if a name value pair exist with the key "submit". So if you have a submit button but it has a different name other than submit then you have to use that with isset.

share|improve this answer
1  
Thanks Swordfish for clarifying what i had in my post +1 –  Marc Towler Aug 18 '11 at 8:55

Use !empty($a) instead of isset($_POST['companyname']).

However then your page wouldn't display. Why not:

<?php
if(isset($_POST['submit'])) {

    $company_name = $_POST['companyname'];
    $ballpark_url = $_POST['ballpark_url'];
    $username     = $_POST['username'];
    $email        = $_POST['email'];
    $login1       = $_POST['login1'];
    $pass         = $_POST['pass'];

    $error = false;

    if( !validname( $company_name ) ) {
        echo "enter the valid name";
        $error = true;
    }

    if( !validemail( $email ) ) {
        echo "enter the valid email";
        $error = true;
    }


    if( empty($_POST['companyname']) ) {
        echo "enter a company name";
        $error = true;
    }

    if( !$error ) {
        $query= "INSERT INTO user VALUES ('$company_name',
                                          '$ballpark_url',
                                          '$username',
                                          '$email',
                                          '$login1',
                                          '$pass','');";

        if(!mysql_query($query)) {
         die ( 'error:' . mysql_error() );

         mysql_close( $conn );  
    }

    include("templats/header_1.html"); 
    include("templats/content.html");
    include("templats/footer.html");
}
?>
share|improve this answer
1  
why would he want to use empty(), isset() is much more reliable in this case.... –  Marc Towler Aug 18 '11 at 6:48
    
@JK True, but is the user not in this case just checking to see that the submit key is in the POST array, rather then actually wanting to check the content of it? –  Marc Towler Aug 18 '11 at 6:52
1  
@Marc Towler OP mentioned that it IS inserting into the table. This means that both $_POST['submit'] and $_POST['companyname'] are set in the array, however I think he wants to prevent it from submitting when $_POST['companyname'] is empty. –  Blair Aug 18 '11 at 6:55
1  
@idea that is a good point that i missed, but i still stand by what i said to JK based on what he said –  Marc Towler Aug 18 '11 at 8:55
1  
@Mark Towler You're right - It could be either: OP either didn't expect companyname to have posted, or he expected it to post but wanted to check if it was empty (and used the wrong function to do so). I thought the latter was more likely and based my answer off this assumption. –  Blair Aug 18 '11 at 9:14

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