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连接出错后为什么还会执行else后的语句?解决办法

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Release: 2016-06-13 13:32:55
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连接出错后为什么还会执行else后的语句?

PHP code
<!--

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--><?php $mysqli=new mysqli('localhost','root','root1','mydb');

    if ($mysqli->connect_error){
        die("连接失败".$mysqli->connect_error);
    }else{
        echo "连接成功";
    };
?>
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上面代码,我故意把root写成root1,如果不改,页面显示连接成功,可是连接出错页面会显示如下
Warning: mysqli::mysqli() [mysqli.mysqli]: (28000/1045): Access denied for user 'root'@'localhost' (using password: YES) in C:\wamp\www\Project1\f.php on line 2

Warning: main() [function.main]: Couldn't fetch mysqli in C:\wamp\www\Project1\f.php on line 4
连接成功
为什么连接出错了,没有显示die里的 连接失败 信息?
如果连接失败,为什么还会显示else里的连接成功?

------解决方案--------------------
很简单
当连接失败后, $mysqli 就是无效的
if ($mysqli->connect_error)
就会因为 $mysqli 不是对象,而不能进入 true 分支

于是只会执行 echo "连接成功";
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