Php mysqli_query()在显示数据库中的数据时至少需要2个参数错误
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$conn = your database connection ;
$qry = "SELECT * FROM singles ORDER BY sales";
$result = mysqli_query($conn,$qry);
if($result->num_rows > 0){
while($row = $result->fetch_assoc()){
echo $row;
}
}
除了链接的资源之外,您实际上没有包含任何相关的代码-请在示例代码中同时包含对mysqli_query和mysqli_fetch_数组的调用。@我一直在尝试,但当我将其粘贴到此处时,它不会显示顶部。让我来修复它。你不能只添加一个i并像mysql一样使用mysqli函数。请查阅手册。参数1必须是程序使用的链接。mysqli_fetch_数组不接受链接。@user3783243好的,那么如何修复它?将mysqli更改为mysql?我在这方面还是个初学者,我需要很多帮助。手册总是告诉你你需要知道的一切。mysqli_query mysqli$link、string$query和mysqli_fetch\u数组mysqli_result$result这么长的版本$结果=mysqli_query$con,按销售从单件订单中选择*;;而$row=mysqli\u fetch\u array$result{