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I have a database of a schedule where volunteers can check their shifts. I'm going to email them a link to the page where they enter their email addresses into an HTML form to access this information.

Is there a way I can track which emails are queried so I can resend the schedule link to those who haven't accessed the database?

If necessary, I could add an additional 'confirmed' check box to the results and have that update the database. I like that idea, but I'm not sure how to implement (or the terminology for what that action would be).

Edit: Here's the code I'm using to implement. However I'm not getting results in the confirmed column.

                $db = new mysqli("host", "user", "pass", "db");

    $stmt = $db->prepare('UPDATE volConfirm SET confirmed = TRUE WHERE email = ?');
    $stmt->bind_param('s', $_POST['email']);
    $stmt->execute();

    $stmt = $db->prepare('SELECT * from volConfirm WHERE email = ?');
    $stmt->bind_param('s', $_POST['email']);
    $result = $stmt->get_result();
    while ($row = $result->fetch_array(MYSQLI_NUM)) {
    // construct your output here using $row to access database record
    echo "<h2>" . $row['agreeName'] . "</h2>";
    echo "<p> You have been assigned as a volunteer for:" . $row['position'] . "</p>";
    echo "<p>Your shift times are scheduled for:" . $row['shift_times'] . "</p>";
    echo "<p>Your shift has been confirmed:" . $row['confirmed'] . "</p>";
    }
share|improve this question
    
you can add a field in your table (visited) when user enters email update it from 0 to 1. –  Leri Apr 24 '12 at 14:01
    
Are you getting any MySQL errors? Change the fourth line into $result = mysql_query($query) or die(mysql_error());. Also, in your code above, you should use mysql_real_escape_string to escape the user input. Never trust user input :) en.wikipedia.org/wiki/SQL_injection –  Daan Apr 24 '12 at 14:43
    
Hi Daan- I'm not getting any errors when I add the 'or die'. (Updated code in OP) –  Commandrea Apr 24 '12 at 15:16
    
Now I'm getting the error 'Query is empty'- (updated code above) –  Commandrea Apr 24 '12 at 15:35
    
@Commandrea: See my updated answer. I'm using prepared statements via mysqli to avoid SQL injection. The first half updates the new confirmed flag in the table, whilst the second half fetches the table values for you to then output as you see fit. –  eggyal Apr 24 '12 at 15:38

1 Answer 1

up vote 1 down vote accepted

You need to do something along the lines of:

  1. Add a new column to your volunteers table

    ALTER TABLE Volunteers ADD COLUMN Confirmed BOOLEAN NOT NULL DEFAULT FALSE;
    
  2. Have the PHP in the submission page update that column:

    UPDATE Volunteers SET Confirmed = TRUE WHERE Email = 'foo@bar.com';
    

    In your code snippet:

    $db = new mysqli("dbhostname", "username", "password", "dbschema");
    
    $stmt = $db->prepare('UPDATE volConfirm SET confirmed = TRUE WHERE email = ?');
    $stmt->bind_param('s', $_POST['email']);
    $stmt->execute();
    
    $stmt = $db->prepare('SELECT * from volConfirm WHERE email = ?');
    $stmt->bind_param('s', $_POST['email']);
    $result = $stmt->get_result();
    
    while ($row = $result->fetch_array(MYSQLI_NUM)) {
      // construct your output here using $row to access database record
    }
    
  3. At some point in the future, get a list of all users who have not yet accessed the page:

    SELECT Email FROM Volunteers WHERE Confirmed = FALSE;
    
share|improve this answer
    
Hey Eggy-Thanks! I've got the column added (#1) however, what should I replace 'users' with? I tried my 'volConfirm' table key but it's not updating the DB. –  Commandrea Apr 24 '12 at 14:31
    
Sorry, my bad. Users in #2 should have been Volunteers (i.e. the table name). Corrected. –  eggyal Apr 24 '12 at 14:32
    
Okay- I did that and it didn't work anyways :) I think I'm running into an issue w/ the 'foo@bar.com' -- as the email ='$email' (or the query input by the user) –  Commandrea Apr 24 '12 at 14:35
1  
You don't want to be writing WHERE EMAIL = '$email', especially if the value of $email is outside your control: Bobby Tables's school did that and they got burnt. As far as why it isn't working in this test case, you'll probably need to provide a little more information (did you get an error? what data is in your volunteers table? can you SELECT the volunteer okay?) –  eggyal Apr 24 '12 at 14:41
1  
The 'mystery' value is known as an unsafe or 'unsanitised' variable; it poses the risk of 'SQL injection'. Is that what you were after? –  eggyal Apr 24 '12 at 14:44

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