我搜索过网络,到目前为止我所看到的是你可以使用mysql_和mysqli_一起意义:
<?php
$con=mysqli_connect("localhost", "root" ,"" ,"mysql");
if( mysqli_connect_errno( $con ) ) {
echo "failed to connect";
}else{
echo "connected";
}
mysql_close($con);
echo "Done";
?>
要么
<?php
$con=mysql_connect("localhost", "root" ,"" ,"mysql");
if( mysqli_connect_errno( $con ) ) {
echo "failed to connect";
}else{
echo "connected";
}
mysqli_close($con);
echo "Done";
?>
有效,但是当我使用这段代码时,我得到的是:
Connected
Warning: mysql_close() expects parameter 1 to be resource, object given in D:\************.php on line 9
Done
对于第一个和相同的除外mysqli_close().对于第二个.
问题是什么?我不能使用mysql_和mysqli在一起?还是正常的?我可以检查连接是否有效吗?(if(mysq...))
这是一个规范的答案,旨在解决这个非常常见的问题.有关此错误消息的任何问题都应作为此错误的副本关闭.
使用MySQL时,使用mysql_fetch_array()或时出现错误mysql_fetch_assoc().错误消息是:
mysql_fetch_array()期望参数1是资源
要么
mysql_fetch_assoc()期望参数1是资源
我似乎无法弄清楚我做错了什么.因此,当我提交表单时,我收到警告错误
注意:未定义的变量:第30行/Library/WebServer/Documents/ArturoLuna_Final/loginCheck.php中的dbusername
$username = $_POST['username'];
$password = $_POST['password'];
if($username&&$password)
{
require 'conn.php';
$query = "SELECT * FROM users WHERE username='$username'";
$result = $mysql->query($query) or die(mysqli_error($mysql));
$numrows = $result->num_rows;
if ($numrows!=0)
{
while($row = mysql_fetch_assoc($result))
{
$dbusername = $row['username'];
$dbpassword = $row['password'];
}
//check to see if they match!
if($username==$dbusername&&$password==$dbpassword)
{
echo "youre In!";
}
else
echo "incorrect password!";
}
else
die("that user is dead");
//echo $numrows;
}
else
echo ("Please Enter Username")
我可能做错了什么?