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I'm sending the email using the php script.I wanna to display the user name in from and his email id in reply path.I'm using the following code.I'm using the html in message.

 Error.: It is not showing the from in email , showing unknow sender.


  <?php  
 $name="TEST TEST";
 $from1=test@gmail.com
 $msg='<div>hello dfjdk faofd akfda </div>';
 $to =$email;
 $subject = $ab." Return SMS";
  $message = $msg;
  $from1 = 'test@yahoo.com';
  $headers = "From:$name\r\n";
  $headers .= "MIME-Version: 1.0\n";
  $headers .= 'Content-Type: text/html; charset="iso-8859-1"'."\n";
 $headers .= "Reply-To: $from1\r\n";
   mail($to,$subject,$message,$headers);
  ?>
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It might be helpful if you were to actually post the error you are getting –  Pankrates Jan 12 '13 at 22:18
    
$from1='test@gmail.com'; –  Fabian Tamp Jan 12 '13 at 22:18
    
It is not showing the from in email , showing unknow sender. –  user1734190 Jan 12 '13 at 22:21
    
If your post perfectly copies the code then @Fabian Tamp is right and you are missing double quotes and a semicolon in the line of $from1. Change it to $from1="test@gmail.com"; In your code the 'from' is only included through the headers and should come up as 'From: TEST TEST" otherwise I have difficulty understanding your problem –  Pankrates Jan 12 '13 at 22:22
    
but it is not showing TEST TEST –  user1734190 Jan 12 '13 at 22:28

2 Answers 2

up vote 0 down vote accepted

Give this one a try:

<?php  
  $to = $email;
  $subject = $ab." Return SMS";
  $message = '<div>hello dfjdk faofd akfda </div>';
  $name = "TEST TEST";
  $from1 = "test@gmail.com";
  $headers = "From: $name <$from1>\r\n";
  $headers .= "MIME-Version: 1.0\n";
  $headers .= 'Content-Type: text/html; charset="iso-8859-1"'."\n";
  $headers .= "Reply-To: $name <$from1>\r\n";
  mail($to, $subject, $message, $headers);
?>
share|improve this answer

First of all, your markup is all wrong.

$from=test@gmail.com

This is not valid php. $from = "test@gmail.com" is however.

Next, in your first header line, the From:$name is also a problem. The $name should be the e-mail of the sender.

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