根据我在数据库中检查的输入数据,我需要帮助解决我的一个问题.如果值存在,我转发到另一页; 否则出现错误.输入任何值显示相同,我无法使用php代码查看echo.单独测试代码工作正常,但是当与html代码集成时,它会失败.有人可以识别代码中的任何错误吗?我该如何解决问题?
<!DOCTYPE html>
<?php
if (isset($_POST["submit"])) {
include("connect.php");
$message = NULL;
if(empty($_POST["empid"])) {
$u = FALSE;
$message .= "You have to enter your Employee ID !<br />";
}
else {
$u = intval(stripslashes(trim($_POST["empid"])));
}
if($u) {
$query = "SELECT Emp_ID FROM Data WHERE Emp_ID = '$u' ";
$result = @mysql_query($query);
$row = mysql_fetch_array($result);
if($row){
session_start();
header("Location: ModifyEmpInfo.php?empid=$u");
exit();
}
else {
$message .= "Employee ID provided does not exists. Try again!<br />";
}
}
}
$page_title = "FindEmpolyee";
if(empty($message)) …