0

这是我的php代码

//DONT EDIT BELOW THIS LINE
//Export the database and output the status to the page
$command='mysqldump --opt -h' .$mysqlHostName .' -u' .$mysqlUserName .' -p' .$mysqlPassword .' ' .$mysqlDatabaseName .' > ~/' .$mysqlExportPath;
exec($command,$output=array(),$worked);
switch($worked){
case 0:
    echo 'Database <b>' .$mysqlDatabaseName .'</b> successfully exported to <b>~/' .$mysqlExportPath .'</b>';
    break;
case 1:
    echo 'There was a warning during the export of <b>' .$mysqlDatabaseName .'</b> to <b>~/' .$mysqlExportPath .'</b>';
    break;
case 2:
    echo 'There was an error during export. Please check your values:<br/><br/><table><tr><td>MySQL Database Name:</td><td><b>' .$mysqlDatabaseName .'</b></td></tr><tr><td>MySQL User Name:</td><td><b>' .$mysqlUserName .'</b></td></tr><tr><td>MySQL Password:</td><td><b>NOTSHOWN</b></td></tr><tr><td>MySQL Host Name:</td><td><b>' .$mysqlHostName .'</b></td></tr></table>';
    break;
}
?>

当我尝试执行此文件时。这个错误显示。“严格的标准:只有变量应该在第 12 行的 C:\wamp\www\dbest.php 中通过引用传递”

为什么这个错误显示?请帮帮我...谢谢

4

1 回答 1

1

赋值表达式的值是赋值的值

赋值运算符

$output=array()是返回值(空数组)但不是变量的表达式。因此它不能用作通过引用获取该参数的函数的参数。

但是你可以尝试使用这个错误

于 2013-11-15T06:05:10.677 回答