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I have converted my activation script over from mysql to mysqli but my activation script isn't updating the database once the link is clicked in the email. This is my old code

function activate($email, $email_code) {
global $myConnection;
$email = mysqli_real_escape_string($email);
$email_code = mysqli_real_escape_string($email_code);

if (mysqli_result(mysqli_query($myConnection, "SELECT COUNT(`mem_id`) FROM `members` WHERE `mem_email` = '$email' AND `email_code` = '$email_code' AND `mem_emailactivated` = 0"), 0) == 1) {
    mysqli_query($myConnection, "UPDATE `members` SET mem_emailactivated = 1 WHERE `mem_email` = '$email'");
    return true;
} else {
    return false;
}
}

This is my new code

function activate($email, $email_code) {
$myNewConnection = myConnection();
$email = mysqli_real_escape_string($myNewConnection, $email);
$email_code = mysqli_real_escape_string($myNewConnection, $email_code);
$query = mysqli_query($myNewConnection, "SELECT COUNT(`mem_id`) FROM `members` WHERE `mem_email` = '$email' AND `email_code` = '$email_code' AND `mem_emailactivated` = '0'");
$result = mysqli_num_rows($myNewConnection, $query);
echo $query;
exit();
if ($result == 1) {
    $sql = "UPDATE `members` SET mem_emailactivated = 1 WHERE `mem_email` = '$email'";
    $query = mysqli_query($myConnection, $sql) or die(mysql_error($myConnection));
    return true;
} else {
    return false;
}
}

And if I echo out the query as you can see in my code I get the error

Catchable fatal error: Object of class mysqli_result could not be converted to string in /homepages/24/d156351352/htdocs/test/storescripts/users.php on line 211

However I am confused as I do not use mysqli_result in the function or query, so I am unsure as to where the error lies

share|improve this question
    
Which is line 211? –  Marcel Korpel Apr 4 '13 at 12:15
    
@MarcelKorpel its the one where I echo the query –  jhetheringt7 Apr 4 '13 at 12:18
    
@MarcelKorpel echo $query; is line 211 –  Yogesh Suthar Apr 4 '13 at 12:18
    
duplicate of stackoverflow.com/questions/15746249/… –  Your Common Sense Apr 4 '13 at 12:27

2 Answers 2

Because SELECT query gives result in array use print_r to view the result

print_r($query);
share|improve this answer
    
there is no point in printing $query variable. –  Your Common Sense Apr 4 '13 at 12:25
    
@YourCommonSense OP wants to view the result and because of that he used echo $query;. But $query is array and because of that this answer is valid. –  Yogesh Suthar Apr 4 '13 at 12:27
up vote -1 down vote accepted

I was getting confused with mysqli and where to establish the connection. I have the $myNewConnection within mysqli_num_rows when it shouldn't be there. It should look like this

function activate($email, $email_code) {
$myNewConnection = myConnection();
$email = mysqli_real_escape_string($myNewConnection, $email);
$email_code = mysqli_real_escape_string($myNewConnection, $email_code);
$query = mysqli_query($myNewConnection, "SELECT COUNT(`mem_id`) FROM `members` WHERE `mem_email` = '$email' AND `email_code` = '$email_code' AND `mem_emailactivated` = '0'");
$result = mysqli_num_rows($query);
print_r ($result);
exit();
if ($result == 1) {
$sql = "UPDATE `members` SET mem_emailactivated = 1 WHERE `mem_email` = '$email'";
$query = mysqli_query($myConnection, $sql) or die(mysql_error($myConnection));
return true;
} else {
return false;
}
}
share|improve this answer
    
You've been told already, how to verify a user against database. but for some reason you're continue spamming the same question, using whatever random codes but one you've been given with –  Your Common Sense Apr 4 '13 at 12:29
    
I was purely asking what the error Catchable fatal error: Object of class mysqli_result could not be converted to string in /homepages/24/d156351352/htdocs/test/storescripts/users.php on line 211 meant. Completely different question –  jhetheringt7 Apr 4 '13 at 12:55

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