php – 构建mysqli查询?
发布时间:2020-12-13 16:23:42 所属栏目:PHP教程 来源:网络整理
导读:如果我有查询选择users.user_id,users.fname,users.lname,bios.bio,groups.groupid来自用户LEFT JOIN bios on users.user_id = bios.userid那么我想在条件上添加另一个表然后最后添加where语句.问题是因为当我绑定param时,它说“变量的数量与prepare语句中的
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如果我有查询选择users.user_id,users.fname,users.lname,bios.bio,groups.groupid来自用户LEFT JOIN bios on users.user_id = bios.userid那么我想在条件上添加另一个表然后最后添加where语句.问题是因为当我绑定param时,它说“变量的数量与prepare语句中的变量数量不匹配”.我该如何解决这个问题?干杯.例:
$info = "select users.user_id,groups.groupid from users LEFT JOIN bios on users.user_id = bios.userid";
$content = $members->prepare($info);
if ($_GET['where'] == 'requests') $info .= "LEFT JOIN requests on users.user_id = requests.receiver";
else if ($_GET['where'] == 'referrals') $info .= "LEFT JOIN referrals on users.user_id = referrals.receiver";
$info .= "where users.user_id = ?";
$content->bind_param('s',$_SESSION['token'][1]);
$content->execute();
解决方法
您正在准备它之后更改SQL字符串.不要那样做.这样做是这样的:
$info = "select users.user_id,groups.groupid from users LEFT JOIN bios on users.user_id = bios.userid";
if ($_GET['where'] == 'requests') $info .= " LEFT JOIN requests on users.user_id = requests.receiver";
else if ($_GET['where'] == 'referrals') $info .= " LEFT JOIN referrals on users.user_id = requests.receiver";
$info .= " where users.user_id = ?";
$content = $members->prepare($info);
$content->bind_param('s',$_SESSION['token'][1]);
$content->execute();
编辑:另外,确保您的SQL片段在必要时用空格分隔; .=运算符不会自动为您添加空格. (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! |