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我需要输入USER表的USER_ID字段作为另一个表中的外键。 因此,我认为我需要在用户登录时启动一个会话。我很难让它在任何地方回显。我可以开始一个会话,允许我回显USERNAME,但不能复制该ID。当用户使用用户名和密码登录时获取用户ID
请帮忙吗?我的处理代码如下。我也粘贴了我暂时试图回应测试的部分。
处理脚本:
<?php
session_start();
$error_message = array();
$error = false;
$dbhost = "localhost";
$dbname = "xxx";
$dbuser = "xxx";
$dbpass = "xxx";
$conn = new PDO("mysql:host=$dbhost;dbname=$dbname",$dbuser,$dbpass);
$user = $_POST['uname'];
$password = $_POST['pword'];
if($user == '') {
$error_message[] = 'You have not entered the required username.';
$error = true;
}
if($password == '') {
$error_message[] = 'You have not entered the required username';
$error = true;
}
$result = $conn->prepare("SELECT * FROM USER WHERE USERNAME= :un AND PASSWORD= :pw");
$result->bindParam(':un', $user);
$result->bindParam(':pw', $password);
$result->execute();
while ($rows = $result->fetch(PDO::FETCH_NUM)) {
if($rows > 0) {
$_SESSION['Logged_In'] = true;
$_SESSION['username'] = $user;
$_SESSION['USER_ID'] = $rows['USER_ID'];
header('Location: index.php');
}
else{
$error_message[] = 'Your username and password are not correct. Try again.';
$error = true;
}
if($error) {
$_SESSION['ERROR_MESSAGE'] = $error_message;
session_write_close();
header("location: log_in.php");
exit();
}}
?>
我想要的USER_ID出现:
<?php
session_start();
if(isset($_SESSION['Logged_In']))
{
echo '<br><br>';
echo 'You are logged in as ';
echo $_SESSION['username'];
echo '<br>';
echo "ID = ".$_SESSION['USER_ID'];
echo '<br>';
echo '<a href="logout.php">
Click here to log out.</a>';
}
else
{
echo '<br>';
echo 'You are not logged in!<br>';
echo '<a href="log_in.php">Click here to log in,</a><br>';
echo '<a href="register.php">or click here to register.</a>';
}
?>
什么是会议的问题呢? –
您是否尝试过使用FETCH_ASSOC而不是FETCH_NUM? –
@LucaIaco完美无缺!非常感谢你:) :) – user3183576