JLA*_*JLA 3 php mysql mysqli prepared-statement
因此,我正在重新编写脚本以包含准备好的语句。之前运行良好,但现在运行脚本时,我收到“在预准备语句中没有为参数提供数据”。这是什么问题?
<?php
require_once("models/config.php");
$firstname = htmlspecialchars(trim($_POST['firstname']));
$firstname = mysqli_real_escape_string($mysqli, $firstname);
$surname = htmlspecialchars(trim($_POST['surname']));
$surname = mysqli_real_escape_string($mysqli, $surname);
$address = htmlspecialchars(trim($_POST['address']));
$address = mysqli_real_escape_string($mysqli, $address);
$gender = htmlspecialchars(trim($_POST['gender']));
$gender = mysqli_real_escape_string($mysqli, $gender);
$city = htmlspecialchars(trim($_POST['city']));
$city = mysqli_real_escape_string($mysqli, $city);
$province = htmlspecialchars(trim($_POST['province']));
$province = mysqli_real_escape_string($mysqli, $province);
$phone = htmlspecialchars(trim($_POST['phone']));
$phone = mysqli_real_escape_string($mysqli, $phone);
$secondphone = htmlspecialchars(trim($_POST['secondphone']));
$secondphone = mysqli_real_escape_string($mysqli, $secondphone);
$postalcode = htmlspecialchars(trim($_POST['postalcode']));
$postalcode = mysqli_real_escape_string($mysqli, $postalcode);
$email = htmlspecialchars(trim($_POST['email']));
$email = mysqli_real_escape_string($mysqli, $email);
$organization = htmlspecialchars(trim($_POST['organization']));
$organization = mysqli_real_escape_string($mysqli, $organization);
$inriding = htmlspecialchars(trim($_POST['inriding']));
$inriding = mysqli_real_escape_string($mysqli, $inriding);
$ethnicity = htmlspecialchars(trim($_POST['ethnicity']));
$ethnicity = mysqli_real_escape_string($mysqli, $ethnicity);
$senior = htmlspecialchars(trim($_POST['senior']));
$senior = mysqli_real_escape_string($mysqli, $senior);
$student = htmlspecialchars(trim($_POST['student']));
$student = mysqli_real_escape_string($mysqli, $student);
$order= "INSERT INTO persons (firstname, surname, address, gender, city, province, postalcode, phone, secondphone, email, organization, inriding, ethnicity, senior, student_id) VALUES (?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?)";
$stmt = mysqli_prepare($mysqli, $order);
mysqli_stmt_bind_param($stmt, "sssd", $firstname, $surname, $address, $gender, $city, $province, $postalcode, $phone, $secondphone, $email, $organization, $inriding, $ethnicity, $senior, $student);
mysqli_stmt_execute($stmt);
echo $stmt->error;
$result = mysqli_query($mysqli,$stmt);
if ($result === false) {
echo "Error entering data! <BR>";
echo mysqli_error($mysqli);
} else {
echo "User $firstname added <BR>";
}
?>
提前致谢。
您仅用控制字符串“ sssd”绑定了四个参数,但是您有许多参数。使用mysqli绑定变量时,每个参数需要一个字符,例如:
mysqli_stmt_bind_param($stmt, "sssdsssssssssdd", $firstname, $surname, $address,
$gender, $city, $province, $postalcode, $phone, $secondphone, $email,
$organization, $inriding, $ethnicity, $senior, $student);
(我假设大四和学生是整数,并且需要“ d”代码。)
您不需要使用mysqli_real_escape_string()处理任何变量,这就是使用参数的关键所在。如果您也进行转义,则会在数据库的数据中获得原义的反斜杠字符。
而且,您在任何情况下都无需使用htmlspecialchars()-在输出为HTML而不是插入数据库时将使用它。您将获得文字序列,例如&数据库中的数据。
重新出现下一个错误:
“可捕获的致命错误:mysqli_stmt类的对象无法在...中转换为字符串。”
这是由于以下原因引起的:
$result = mysqli_query($mysqli,$stmt);
该函数期望第二个参数为字符串,即新的SQL查询。但是您已经准备好了该查询,因此需要以下内容:
$result = mysqli_stmt_execute($stmt);
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