我有一个非常简单的登录/用户注册脚本,使用sha1和salt存储密码.我有密码和用户创建工作正常,并将所有内容存储在数据库中,但是当我尝试使用凭据登录时,它不起作用.在搜索这个主题时,我似乎找不到任何东西.
这是我的添加用户表单:
session_start();
include("includes/resume.config.php");
// make sure form fields have a value and strip them
function check_input($data, $problem='')
{
$data = trim($data);
$data = stripslashes($data);
$data = htmlspecialchars($data);
if ($problem && strlen($data) == 0)
{
die($problem);
}
return $data;
}
// get form values, escape them and apply the check_input function
$name = $link->real_escape_string(check_input($_POST['name'], "Please enter a name!"));
$email = $link->real_escape_string(check_input($_POST['email'], "Please enter an email!"));
$password = $link->real_escape_string(check_input($_POST['password'], "Please enter a password!"));
// generate a random salt for converting passwords into MD5
$salt = bin2hex(mcrypt_create_iv(32, MCRYPT_DEV_URANDOM));
$saltedPW = $password . $salt;
$hashedPW = sha1($saltedPW);
mysqli_connect($db_host, $db_user, $db_pass) OR DIE (mysqli_error());
// select the db
mysqli_select_db ($link, $db_name) OR DIE ("Unable to select db".mysqli_error($db_name));
// our sql query
$sql = "INSERT INTO admins (name, email, password, salt) VALUES ('$name', '$email', '$hashedPW', '$salt');";
//save the updated information to the database
mysqli_query($link, $sql) or die("Error in Query: " . mysqli_error($link));
if (!mysqli_error($link))
{
header("Location: file_insert.php");
}
这是我的登录脚本:这是不起作用的
function check_input($data, $problem='')
{
$data = trim($data);
$data = stripslashes($data);
$data = htmlspecialchars($data);
if ($problem && strlen($data) == 0)
{
die($problem);
}
return $data;
}
if(isset($_POST['submitLogin'])) { //form submitted?
// get form values, escape them and apply the check_input function
$name = $link->real_escape_string(check_input($_POST['name'], "Please enter a name!"));
$password = $link->real_escape_string(check_input($_POST['password'], "Please enter a password!"));
$saltQuery = $link->query('SELECT salt FROM admins WHERE name = "'.$name.'"');
$salt = mysqli_fetch_assoc($saltQuery);
$saltedPW = $password . $salt;
$hashedPW = sha1($saltedPW);
mysqli_connect($db_host, $db_user, $db_pass) OR DIE (mysqli_error());
// select the db
mysqli_select_db ($link, $db_name) OR DIE ("Unable to select db".mysqli_error($db_name));
$validate_user = $link->query('SELECT id, name, password FROM admins WHERE name = "'.$name.'" AND password = "'.$hashedPW.'"');
if ($validate_user->num_rows == 1) {
$row = $validate_user->fetch_assoc();
$_SESSION['id'] = $row['id'];
$_SESSION['loggedin'] = TRUE;
Header('Location: file_insert.php');
} else {
print "<center><p style='margin-top: 200px; font-weight: bold;'>Invalid Login Information</p>";
print "<a href='admin-login.php'>Click here</a> to return to the login page.</center>";
}
}
解决方法:
可能会有更多的事情发生,但肯定的一个原因是它不起作用是因为mysqli_fetch_assoc返回一个数组,而你正在使用它像一个字符串.
当你调用$password时,PHP会抱怨数组转换为字符串. $salt因为此时$salt是一个数组.结果是您在密码后面附加了单词Array,导致散列不正确.如果您关闭了display_errors和/或将error_reporting设置为隐藏php.ini中的通知,那么您将看不到此消息.
如果你改变:
$saltedPW = $password . $salt;
至:
$saltedPW = $password . $salt['salt'];
那它应该工作.
此外,您应该在将$插入数据库之前转义$salt,因为它可能包含null,unprintable或单/双引号,因为它是随机生成的.