Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

When I submit a new name and not a new avatar I get the following avatar error message Please upload a .gif, .jpeg, .jpg or .png image!. I want to be able to send a new name only without having to upload a new avatar each time I submit the form without getting the avatar error message Please upload a .gif, .jpeg, .jpg or .png image! can someone help me fix this problem?

Here is the php code.

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

    $mysqli = mysqli_connect("localhost", "root", "", "sitename");
    $dbc = mysqli_query($mysqli,"SELECT users.*
                                 FROM users 
                                 WHERE user_id=3");

    $first_name = mysqli_real_escape_string($mysqli, htmlentities(strip_tags($_POST['first_name'])));

$user_id = '3';

if(isset($_FILES["avatar"]["name"]) && $_FILES['avatar']['size'] <= 5242880) {

    if($_FILES["avatar"]["type"] == "image/gif" || $_FILES["avatar"]["type"] == "image/jpeg" || $_FILES["avatar"]["type"] == "image/jpg" || $_FILES["avatar"]["type"] == "image/png" || $_FILES["avatar"]["type"] == "image/pjpeg") {

        if (file_exists("../members/" . $user_id . "/images/" . $_FILES["avatar"]["name"])) {
          echo '<p class="error">' . mysqli_real_escape_string($mysqli, htmlentities(strip_tags(basename($_FILES["avatar"]["name"])))) . ' already exists! ';
        } else if($_FILES["avatar"]["name"] == TRUE) {
          move_uploaded_file($_FILES["avatar"]["tmp_name"],
          "../members/" . $user_id . "/images/" . mysqli_real_escape_string($mysqli, htmlentities(strip_tags(basename($_FILES["avatar"]["name"])))));
          $avatar = mysqli_real_escape_string($mysqli, htmlentities(strip_tags(basename($_FILES["avatar"]["name"]))));
        }

    } else if($_FILES["avatar"]["type"] != "image/gif" || $_FILES["avatar"]["type"] != "image/jpeg" || $_FILES["avatar"]["type"] != "image/jpg" || $_FILES["avatar"]["type"] != "image/png" || $_FILES["avatar"]["type"] != "image/pjpeg") {
        echo '<p class="error">Please upload a .gif, .jpeg, .jpg or .png image!</p>';
    }

} else if($_FILES['avatar']['size'] >= 5242880) {
    echo '<p class="error">Please upload a smaller pic!</p>';
} else if($_FILES["avatar"]["name"] == NULL) {
    $avatar = NULL;
}


if(isset($_FILES["avatar"]["name"]) && $_FILES['avatar']['size'] <= 5242880) {

        if (mysqli_num_rows($dbc) == 0) {
                $mysqli = mysqli_connect("localhost", "root", "", "sitename");
                $dbc = mysqli_query($mysqli,"INSERT INTO users (user_id, first_name, avatar) 
                                             VALUES ('$user_id', '$first_name', '$avatar')");
        }

        if ($dbc == TRUE) {
                $dbc = mysqli_query($mysqli,"UPDATE users 
                                             SET first_name = '$first_name', avatar = '$avatar' 
                                             WHERE user_id = '$user_id'");

                echo '<p class="changes-saved">Your changes have been saved!</p>';

        }

        if (!$dbc) {
                print mysqli_error($mysqli);
                return;
        }

    }

}
share|improve this question
    
Please be aware of the following: the type property of the info in $_FILES is not a reliable way to test the mime type. It can be spoofed. You'ld be better of using FileInfo php.net/manual/en/book.fileinfo.php. Furthermore your SQL queries are vulnarable to SQL injection en.wikipedia.org/wiki/SQL_injection. You should consider using prepared statements. –  Decent Dabbler Apr 15 '10 at 19:30
    
Sorry, I overlooked the mysqli_real_escape_string() calls. So never mind the SQL injection stuff. –  Decent Dabbler Apr 15 '10 at 19:34

1 Answer 1

up vote 0 down vote accepted

You simply need to add a check to see if they specified a new image for their avatar (or left it blank). In that case, without knowing how your form is set up, you could simply check that the size is greater than zero (isset()/empty() can return unexpected results in this case):

if($_FILES['avatar']['size'] > 0) { ... }

Edit In response to your comment, you'd change the following line (including fixing a basic logic error):

} else if($_FILES["avatar"]["type"] != "image/gif" || $_FILES["avatar"]["type"] != "image/jpeg" || $_FILES["avatar"]["type"] != "image/jpg" || $_FILES["avatar"]["type"] != "image/png" || $_FILES["avatar"]["type"] != "image/pjpeg") {

to:

} else if($_FILES["avatar"]["size"] <= 0 && $_FILES["avatar"]["type"] != "image/gif" && $_FILES["avatar"]["type"] != "image/jpeg" && $_FILES["avatar"]["type"] != "image/jpg" && $_FILES["avatar"]["type"] != "image/png" && $_FILES["avatar"]["type"] != "image/pjpeg") {
share|improve this answer
    
where do I put this code at? –  peakUC Apr 15 '10 at 19:14
    
Updated my answer. –  James Burgess Apr 15 '10 at 19:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.