0

您能否提供正确的语法将 html 表单变量传递给 php mailer?

php是:

$comment = $_POST['comment'];
$email = $_POST['email'];

$to      = 'sssff@gmail.com';
$subject = 'From Website';
$message = $comment;
$headers = 'From: $email';

mail($to, $subject, $message, $headers);

$message 需要包含 $comment 的内容

$headers 需要显示 $email 的内容作为返回地址

谁能帮我正确的语法?谢谢

编辑

澄清一下,我从 php 邮件程序收到的电子邮件不包含 $email 包含的发件人地址,邮件也不包含 $comment 的评论。

电子邮件发送良好,但不包含那些关键元素。

如果您想查看表格,它是:

<form class="cmxform" id="commentForm" method="POST" action="">
     <label for="cname">Name</label>
     <input id="cname" type="text" name="name" size="60" class="required" minlength="2" />

     <label for="cemail">E-Mail</label>
     <input id="cemail" type="text" name="email" size="60"  class="required email" />

     <label for="curl">URL</label>
     <input id="curl" type="text" name="url" size="60"  class="url" value="" />

     <label for="ccomment">Your comment</label>
     <textarea id="ccomment" type="text" name="comment" cols="72" rows="8"  class="required"></textarea>
     <div id="button2"><input class="submit" id="submit_btn" type="submit" value="Send Email"/></div>
</form>

谢谢您的帮助

4

2 回答 2

1 
$headers = 'From: $email';
           ^---         ^---

应该"改为。单引号字符串不会插入变量,因此您使用文字$email作为您的 From 地址,而不是someone@example.com.

于 2012-03-21T19:04:59.260 回答
-1 
$comment = $_POST['comment'];
$email = $_POST['email'];

$to = "$email";

$from = 'sender email';
$subject = 'message subject';
//Begin HTML Email Message
$message = "$comment";
//end of message
$headers  = "From: $from\r\n";
$headers .= "Content-type: text\r\n";
mail($to, $subject, $message, $headers);
于 2012-03-22T00:09:06.560 回答