0
我在YouTube上關於設置聯繫頁面的一個教程,出於某種原因我得到一個錯誤信息在控制檯說submitForm沒有定義,當我按下提交。我的問題是我有相同的代碼在另一個網站上工作,但是當我複製完全相同的代碼時,它不起作用。這裏是我的js代碼:Php聯繫表格參考錯誤
function _(id){ return document.getElementById(id); }
function submitForm(){
_("mybtn").disabled = true;
_("status").innerHTML = 'please wait ...';
var formdata = new FormData();
formdata.append("n", _("n").value);
formdata.append("e", _("e").value);
formdata.append("m", _("m").value);
var ajax = new XMLHttpRequest();
ajax.open("POST", "example_parser.php");
ajax.onreadystatechange = function() {
if(ajax.readyState == 4 && ajax.status == 200) {
if(ajax.responseText == "success"){
_("my_form").innerHTML = '<h2>Thanks '+_("n").value+', your message has been sent.</h2>';
} else {
_("status").innerHTML = ajax.responseText;
_("mybtn").disabled = false;
}
}
}
ajax.send(formdata);
}
這裏是我的PHP代碼:
<?php
if(isset($_POST['n']) && isset($_POST['e']) && isset($_POST['m'])){
$n = $_POST['n']; // HINT: use preg_replace() to filter the data
$e = $_POST['e'];
$m = nl2br($_POST['m']);
$to = "[email protected]";
$from = $e;
$subject = 'Contact Form Message';
$message = '<b>Name:</b> '.$n.' <br><b>Email:</b> '.$e.' <p>'.$m.'</p>';
$headers = "From: $from\n";
$headers .= "MIME-Version: 1.0\n";
$headers .= "Content-type: text/html; charset=iso-8859-1\n";
if(mail($to, $subject, $message, $headers)){
echo "success";
} else {
echo "The server failed to send the message. Please try again later.";
}
}
?>
正如你可以看到我定義的功能,但收到這個錯誤。任何幫助將不勝感激。
你怎麼把你的HTML中的JavaScript?直接在'