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I am using mysqli and php and what I am trying to do is that I want the user to be able create a new password if they wish to do this.

For a user to change their password, the will enter in their username in the "Username" textbox and then type in their new password in the "New Password" textbox.

When the user submits the form, it should look in the database, find the username which matches in the database and update that row so the previous password changes to a new password and it also salts the password for better encryption.

But the problem is that it is not doing this at all. The database is not updating the password at all, never mind salting them and I can't figure out what I need to do.

Below is my attempt (I have connected to db but just not included that code below):

     <?php
          // PHP code
          session_start(); 

          $salt = ""; 
        for ($i = 0; $i < 40; $i++) { 
           $salt .= substr(
             "./ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789", 
             mt_rand(0, 63), 
             1); 
        }


          $username = (isset($_POST['username'])) ? $_POST['username'] : '';
          $newpassword = (isset($_POST['newpassword'])) ? $_POST['newpassword'] : '';

          if (isset($_POST['submit'])) {

            // don't use $mysqli->prepare here
     $query = "UPDATE Teacher SET TeacherSalt = $salt, TeacherPassword = SHA1(CONCAT($newpassword,$salt)) WHERE TeacherUserName = ?";
            // prepare query
            $stmt=$mysqli->prepare($query);
            // You only need to call bind_param once
            $stmt->bind_param("s",$username);
            // execute query
            $stmt->execute(); 
            // get result and assign variables (prefix with db)
            $stmt->bind_result($dbTeacherUsername,$dbTeacherPassword);

            while($stmt->fetch()) {
              if ($username == $dbTeacherUsername) {
                $loggedIn = true;
              }
            }

            /* close statement */
            $stmt->close();

            /* close connection */
            $mysqli->close();


          }

....

          <p>Username</p><p><input type="text" name="username" /></p>      <!-- Enter Teacher Username-->
          <p>New Password</p><p><input type="password" name="newpassword" /></p>  <!-- Enter Teacher Password--> 

Below is what the database table currently looks like:

TeacherUsername    TeacherPassword     TeacherSalt
j.lu               fgrfre4r4ffsdfv

So if j.lu wanted to change password, then she will enter in her username and then enter in a new password, then this should all be updated into the table above. But it isn't updating anything.

Thank you

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closed as too localized by Brad Larson Aug 29 '12 at 1:20

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.

    
So what was the problem? Failing to quote your strings/dates? Something else? Tell us how you resolved it! –  paulsm4 Aug 9 '12 at 15:32
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3 Answers 3

up vote 1 down vote accepted

You are fetching the username into variable named $username but you are binding a variable called $teacherusername in bind_param(), which is why the query does not fetch any results.

The bind_param code should be:

    // You only need to call bind_param once
    $stmt->bind_param("s",$username);
share|improve this answer
    
Ok I changed this, (can't believe I made that silly mistake) but it is still not updating the password or include anything under "TeacherSalt" column –  user1394925 Aug 8 '12 at 22:23
    
Also I find that you are trying to fetch values into dbTeacherUsername and dbTeacherPassword using $stmt->bind_result($dbTeacherUsername,$dbTeacherPassword); but you do not have the query run for fetching those.. –  raidenace Aug 8 '12 at 22:49
    
I thought bind_result was needed for UPDATE statement but it is only for SELECT statement. Ok I have done some error reporting and I am getting a fatal error and warning stating this: Warning: mysqli::prepare() [mysqli.prepare]: (42S22/1054): Unknown column 'i6xX2u35GvDo1vegznNkS34uO903y.XaHlp1hFXd' in 'field list' in ... on line 36 .... Fatal error: Call to a member function bind_param() on a non-object in on line 38 –  user1394925 Aug 8 '12 at 23:05
    
TeacherPassowrd is that the field name - if it is then it is misspelt :) and in your query you are spelling it correctly as TeacherPassword –  raidenace Aug 9 '12 at 0:13
    
I only spelt TeacherPassword wrong in SO, it is actually spelt correctly in database –  user1394925 Aug 9 '12 at 0:47
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I guess the problem is with the sql query string. Variables like $salt and $newpassword should be in single quotes so that string would contain TeacherSalt='random' and not TeacherSalt=random.

So you should replace

$query = "UPDATE Teacher SET TeacherSalt = $salt, TeacherPassword = SHA1(CONCAT($newpassword,$salt)) WHERE TeacherUserName = ?";

with

$query = "UPDATE Teacher SET TeacherSalt = '$salt', TeacherPassword = SHA1(CONCAT('$newpassword','$salt')) WHERE TeacherUserName = 'yoursearchparam'";

Hope that works.

share|improve this answer
    
+1: I think you hit it on the head. –  paulsm4 Aug 9 '12 at 15:35
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1) I don't see any error checking or handling.

2) I'm confused about variables "$username", "$newpassword", "$dbTeacherUsername", "$dbTeacherPassword", etc. Are you sure you're using the right name(s) in the right place(s)?

3) At a minimum, please check for "$stmt->execute() == false", and display PDO "errorInfo" as appropriate.

Please post back what you find.

share|improve this answer
    
Ok I have done some error reporting and I am getting a fatal error and warning stating this: Warning: mysqli::prepare() [mysqli.prepare]: (42S22/1054): Unknown column 'i6xX2u35GvDo1vegznNkS34uO903y.XaHlp1hFXd' in 'field list' in ... on line 36 .... Fatal error: Call to a member function bind_param() on a non-object in on line 38 –  user1394925 Aug 8 '12 at 23:06
    
Cool - progress :) Please echo out the variables "$query" and "$username" before you call "execute()". Also try cutting/pasting the same values into the mysql command line and see what happens. Please post back what you find. I'll bet you're probably getting illegal metacharacters... –  paulsm4 Aug 8 '12 at 23:22
    
I tried to echo $query and username but nothing is appearing. Anyway in the sql command if I include this "UPDATE Teacher SET TeacherSalt = 'sample', TeacherPassword = SHA1(CONCAT('fl3od4RrLcfmnnzedkbLqucR2QUfk5J6pPQhe5Eg','sample')) WHERE TeacherUserName = 'j.lu'"; The successfully changes the old password to the new password and the word 'sample' is inserted into the "TeacherSalt" column. Just need to somehow get it working in php –  user1394925 Aug 8 '12 at 23:48
    
Q: Any idea why "query and username aren't appearing"??? Perhaps "if (isset($_POST['submit']))" evaluates to "false"; perhaps something else. But I would focus on getting them to echo: whatever fixes "echo" might resolve the entire problem! –  paulsm4 Aug 9 '12 at 1:26
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