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I keep getting a "Warning: Invalid argument supplied for foreach() on line 102" message when I test my PHP contact form. I have rebuilt my website recently, but I am using the exact same PHP contact form code that I used on my old website, and the old website's form still works without error. I have copied & pasted it word for word, so I'm not sure why I'm getting this error. Any help would really be appreciated.

Here is the line that I am getting the supposed error on (line 102):

foreach($errors as $value) {

Here is the entire form script (the error line is right at the bottom):

<?php 

// 
if(isset($_POST["submit"]))
{

    //This is checking if the string length in the firstname field was greater than 1 character
    if(strlen($_POST["firstname"]) > 1)
    {

        $firstname = $_POST["firstname"];
        //echo $firstname;
    }

    else
    {
        //echo "You did not type in first name";
        $errors["firstname"] = "<span class=\"error\">You did not type in a first name.</span>";
    }


    if(strlen($_POST["lastname"]) > 1)
    {

        $lastname = $_POST["lastname"];
    }

    else
    {
        $errors["lastname"] = "<span class=\"error\">You did not type in a last name.</span>";
    }


    if(strlen($_POST["email"]) > 1)
    {

        $email = $_POST["email"];

        if(filter_var($email, FILTER_VALIDATE_EMAIL)) {
            $email = $email;
        }

        else {
            $errors["email"] = "<span class=\"error\">Email is invalid.</span>";
        }
    }

    else
    {
        $errors["email"] = "<span class=\"error\">You did not type in an email address.</span>";
    }

    //This is checking if the string length in the message field was greater than 1 character
    if(strlen($_POST["message"]) > 1)
    {

        $message = $_POST["message"];
        //echo $firstname;
    }

    else
    {

        $errors["message"] = "<span class=\"error\">You did not type in a message.</span>";
    }


    // Code to tell form NOT to send form if there are any errors.
    if($errors < 1)
    {
            $to = "example@email.com";
            $from = $email;
            // headers makes sure you have a reply-to address
            $headers = "From: {$from}" . "\r\n";
            $headers .= 'MIME-Version: 1.0' . "\r\n";
            $headers .= 'Content-type: text/html; charset=iso-8859-1';

            $subject =  
                "From: ($from)" . "<br />" .
                "First name: ($firstname)" . "<br />" .
                "Last name: ($lastname)" . "<br />" .
                "Email: ($email)" . "<br />" .
                "Message: ($message)";

            if(mail($to, $from, $subject, $headers))
            {
                $finalMsg = "<p class=\"success\">Thank you! Your email was sent.</p>";
            }

            else {
                $finalMsg = "<p class=\"error\">Your email was NOT sent. Please try again.</p>";
            }

}

?>

<?php

//each error is displayed

foreach($errors as $value) {

echo "<span>$value</span><br />";

}
    }
?>
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closed as too localized by deceze, DCoder, cryptic ツ, hjpotter92, Waynn Lue Apr 29 '13 at 2:04

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Is the wording of the warning message not clear enough? foreach expects something array-ish, and it didn't get one. You probably didn't initialize $errors to an empty array and it is not defined when there are no validation errors. (Also, $errors < 1 won't work...) –  DCoder Apr 28 '13 at 7:28
    
Add $errors = array(); at the top maybe? You're manipulating $errors in multiple places, but never telling PHP that it is an array. –  Joachim Isaksson Apr 28 '13 at 7:28
    
Since you are new here, accept the answer(tick) which solved your problem. Up-vote(up arrow) the answer(s) which give(s) you information or help(s) you. Down-vote(down arrow) the answer(s) which are fake. –  Dasun Apr 28 '13 at 7:30
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4 Answers 4

<?php 

$errors = array();
if(isset($_POST["submit"]))
{
    ...

You have to define all your variables. Are you doing it for $firstname? So you should have it for $errors as well.

Also, do not add formatting when defining errors, add it at output. It will save you a lot of typing.

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You are doing a foreach on something that is not an array. You should check that what you are passing to foreach is an array by using the is_array function

If you are not sure it's going to be an array you can always check using the following PHP example code:

if (is_array($errors)) {

  foreach ($errors as $error) {
   //do something
  }
}

Note

The foreach construct provides an easy way to iterate over arrays. foreach works only on arrays and objects, and will issue an error when you try to use it on a variable with a different data type or an uninitialized variable.

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Try adding if(is_array($errors)) around your foreach loop.

Take a look at PHP's error_reporting levels: http://php.net/manual/en/function.error-reporting.php

Most likely your old web server had a lower error reporting level configured.

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Your variable $errors is not set before hand which would cause errors trying to iterate over. As others suggested around the same time as me, declaring $errors before hand should fix this particular issue.

Something like $errors = array(); before your first if-statement would do the trick. Otherwise also similar to other people's suggestions, doing isset or is_array (slightly better due to it checking whether it is an array as well) would help.

PHP foreach Documentation

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1  
Not sure why this was voted down, if $_POST['submit'] is set and all the other variables he is checking against are correct, the $errors object is never set in the code, this would cause this issue. –  Turnerj Apr 28 '13 at 7:32
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