I am getting the following error when using SHIFTEDIT IDE to try connect to my amazon EC2 instance running LAMP server and mysql server.
使用SHIFTEDIT IDE尝试连接到运行LAMP服务器和mysql服务器的amazon EC2实例时出现以下错误。
The code I am writing in PHP to connect to my sql server is as followed:
我用PHP编写的连接到我的sql server的代码如下:
<?php
function connect_to_database() {
$link = mysqli_connect("localhost", "root", "test", "Jet");
if (!$link) {
echo "Error: Unable to connect to MySQL." . PHP_EOL;
echo "Debugging errno: " . mysqli_connect_errno() . PHP_EOL;
echo "Debugging error: " . mysqli_connect_error() . PHP_EOL;
exit;
}
echo "Success: A proper connection to MySQL was made! The my_db database is great." . PHP_EOL;
echo "Host information: " . mysqli_get_host_info($link) . PHP_EOL;
mysqli_close($link);
}
?>
OUTPUT: Success: A proper connection to MySQL was made! The my_db database is great. Host information: Localhost via UNIX socket Access denied for user ''@'localhost' (using password: NO)
输出:成功:与MySQL建立了正确的连接! my_db数据库很棒。主机信息:通过UNIX套接字的Localhost访问被拒绝用户''@ localhost'(使用密码:否)
I am definitely using the right password for root as I can successfully login when using Phpmyadmin, I just cannot make a connection with PHP for some reason.
我肯定使用正确的root密码,因为我可以在使用Phpmyadmin时成功登录,因为某些原因我无法与PHP建立连接。
Currently, I have a single Amazon ec2 instance with LAMP server and a MySQL server installed. Any help will be much appreciated.
目前,我有一个安装了LAMP服务器和MySQL服务器的Amazon ec2实例。任何帮助都感激不尽。
EDIT: I am using Php 5.6.17
编辑:我使用的是PHP 5.6.17
1 个解决方案
#1
0
When you create a mysqli instance (either by new mysqli(...) or mysqli_connect(....) within a function/method, you have to take php's variable scope into account. Return the mysqli instance from the function and let the caller use and/or assign that instance.
当你在函数/方法中创建一个mysqli实例(通过新的mysqli(...)或mysqli_connect(....)时,你必须考虑php的变量范围。从函数中返回mysqli实例并让它调用者使用和/或分配该实例。
<?php
/*
builds and throws an exception from the error/errno properties of a mysqli or mysqli_stmt instance
@param useConnectError true: use connect_error/connect_errno instead
@throws mysqli_sql_exception always does
*/
function exception_from_mysqli_instance($mysqli_or_stmt, $useConnectError=false) {
// see http://docs.php.net/instanceof
if ( !($mysqli_or_stmt instanceof mysqli) && !($mysqli_or_stmt instanceof mysqli_stmt) {
// see docs.php.net/class.mysqli-sql-exception
throw new mysqli_sql_exception('invalid argument passed');
}
else if ($useConnectError) {
// ok, we should test $mysqli_or_stmt instanceof mysqli here ....
throw new mysqli_sql_exception($mysqli_or_stmt->connect_error, $mysqli_or_stmt->connect_errno);
}
else {
throw new mysqli_sql_exception($mysqli_or_stmt->error, $mysqli_or_stmt->errno);
}
}
/* creates a new database connection and returns the mysqli instance
@throws mysqli_sql_exception in case of error
@return valid mysqli instance
*/
function connect_to_database() {
$link = new mysqli("localhost", "root", "test", "Jet");
// see http://docs.php.net/mysqli.quickstart.connections
if ( $link->connect_errno) {
// a concept you might or might not be interested in: exceptions
// in any case this is better than to just let the script die
// give the other code components a chance to handle this error
exception_from_mysqli_instance($link, true);
}
return $link;
}
try { // see http://docs.php.net/language.exceptions
// assign the return value (the mysqli instance) to a variable and then use that variable
$mysqli = connect_to_database();
// see http://docs.php.net/mysqli.quickstart.prepared-statements
$stmt = $mysqli->prepare(....)
if ( !$stmt ) {
exception_from_mysqli_instance($stmt);
}
...
}
catch(Exception $ex) {
someErrorHandler();
}
and a hunch (because of the actual error message; trying to use the default root:<nopassword> connection, that's the behaviour of the mysql_* functions, not of mysqli):
Do not mix mysqli and
mysql_*
functions.
和预感(因为实际的错误消息;尝试使用默认的root:
#1
0
When you create a mysqli instance (either by new mysqli(...) or mysqli_connect(....) within a function/method, you have to take php's variable scope into account. Return the mysqli instance from the function and let the caller use and/or assign that instance.
当你在函数/方法中创建一个mysqli实例(通过新的mysqli(...)或mysqli_connect(....)时,你必须考虑php的变量范围。从函数中返回mysqli实例并让它调用者使用和/或分配该实例。
<?php
/*
builds and throws an exception from the error/errno properties of a mysqli or mysqli_stmt instance
@param useConnectError true: use connect_error/connect_errno instead
@throws mysqli_sql_exception always does
*/
function exception_from_mysqli_instance($mysqli_or_stmt, $useConnectError=false) {
// see http://docs.php.net/instanceof
if ( !($mysqli_or_stmt instanceof mysqli) && !($mysqli_or_stmt instanceof mysqli_stmt) {
// see docs.php.net/class.mysqli-sql-exception
throw new mysqli_sql_exception('invalid argument passed');
}
else if ($useConnectError) {
// ok, we should test $mysqli_or_stmt instanceof mysqli here ....
throw new mysqli_sql_exception($mysqli_or_stmt->connect_error, $mysqli_or_stmt->connect_errno);
}
else {
throw new mysqli_sql_exception($mysqli_or_stmt->error, $mysqli_or_stmt->errno);
}
}
/* creates a new database connection and returns the mysqli instance
@throws mysqli_sql_exception in case of error
@return valid mysqli instance
*/
function connect_to_database() {
$link = new mysqli("localhost", "root", "test", "Jet");
// see http://docs.php.net/mysqli.quickstart.connections
if ( $link->connect_errno) {
// a concept you might or might not be interested in: exceptions
// in any case this is better than to just let the script die
// give the other code components a chance to handle this error
exception_from_mysqli_instance($link, true);
}
return $link;
}
try { // see http://docs.php.net/language.exceptions
// assign the return value (the mysqli instance) to a variable and then use that variable
$mysqli = connect_to_database();
// see http://docs.php.net/mysqli.quickstart.prepared-statements
$stmt = $mysqli->prepare(....)
if ( !$stmt ) {
exception_from_mysqli_instance($stmt);
}
...
}
catch(Exception $ex) {
someErrorHandler();
}
and a hunch (because of the actual error message; trying to use the default root:<nopassword> connection, that's the behaviour of the mysql_* functions, not of mysqli):
Do not mix mysqli and
mysql_*
functions.
和预感(因为实际的错误消息;尝试使用默认的root: