php – 无法获取要显示的查询结果
发布时间:2020-12-13 22:53:25 所属栏目:PHP教程 来源:网络整理
导读:我的查询在下面工作,除了我不能显示应该是“2”的结果(非重复计数的结果).相反,我得到“Total Authors:ID” //var_dump Result:array(1) {[0]= object(stdClass)#349 (1) {["COUNT(DISTINCT writing.ID)"]= string(1) “2″}}//Code:$authors = $wpdb-get_r
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我的查询在下面工作,除了我不能显示应该是“2”的结果(非重复计数的结果).相反,我得到“Total Authors:ID”
//var_dump Result:
array(1) {
[0]=> object(stdClass)#349 (1) {
["COUNT(DISTINCT writing.ID)"]=> string(1) “2″
}
}
//Code:
$authors = $wpdb->get_results("SELECT COUNT(DISTINCT writing.ID)
FROM writing
LEFT JOIN stories on writing.SID = stories.SID
LEFT JOIN wp_users ON writing.ID = wp_users.ID
WHERE (stories.SID = $the_SID)"
);
echo var_dump($authors);
print "Total Authors:" .$authors[0]->writing.ID ."<p>";
解决方法
从var_dump的输出中可以看出,您所需的值存储为对象的成员COUNT(DISTINCT writing.ID).您可以遵循一些解决方法.
>将索引存储为单独的变量,然后在打印时使用它. $t = "COUNT(DISTINCT writing.ID)"; print "Total Authors:" .$authors[0]->$t . "<p>"; >在MySQL查询中使用别名. SELECT COUNT(DISTINCT writing.ID) AS writingID FROM writing LEFT JOIN stories ON writing.SID = stories.SID LEFT JOIN wp_users ON writing.ID = wp_users.ID WHERE (stories.SID = $the_SID) 然后, print "Total Authors:" .$authors[0]->writingID . "<p>"; (编辑:李大同) 【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容! |