我想知道如何将这3个查询连接在一起,因为我只想要一个JSON输出,我认为INNER join会做到这一点。但不知道如何使用这个。有人能指引我走正确的路吗?
$json = array();
$following_string = mysqli_real_escape_string($mysqli,$_SESSION['id']);
$call="SELECT * FROM streamdata WHERE streamitem_id < '$lastID' AND streamitem_target=".$following_string." OR streamitem_creator=".$following_string." ORDER BY streamitem_id DESC LIMIT 10";
$chant = mysqli_query($mysqli, $call) or die(mysqli_error($mysqli));
$json['streamdata'] = array();
while ($resultArr = mysqli_fetch_assoc($chant)) {
$json['streamitem_id'] = $resultArr['streamitem_id'];
$json['streamitem_content'] = $resultArr['streamitem_content'];
$json['streamitem_timestamp'] = Agotime($resultArr['streamitem_timestamp']);
$json['streamdata'] = $json;
}
/***** COMMENTS *****/
$check = "SELECT comment_id, comment_datetime, comment_streamitem, comment_poster, comment_content FROM streamdata_comments WHERE comment_poster=".$following_string." ";
$check1 = mysqli_query($mysqli,$check);
$json['streamdata_comments'] = array();
while ($resultArr = mysqli_fetch_assoc($check1)) {
$json['comment_id'] = $resultArr['comment_id'];
$json['comment_content'] = $resultArr['comment_content'];
$json['comment_poster'] = $resultArr['comment_poster'];
$json['comment_datetime'] = Agotime($resultArr['comment_datetime']);
$json['comment_streamitem'] = $resultArr['comment_streamitem'];
$json['streamdata_comments'] = $json;
}
/***** USERS *****/
$check = "SELECT * FROM users WHERE id=".$following_string."";
$check1 = mysqli_query($mysqli,$check);
$json['users'] = array();
while ($resultArr = mysqli_fetch_assoc($check1)) {
$json['username'] = $resultArr['username'];
$json['id'] = $resultArr['id'];
$json['first'] = $resultArr['first'];
$json['middle'] = $resultArr['middle'];
$json['last'] = $resultArr['last'];
$json['users'] = $json;
}
echo json_encode($json);
}
?>
您正在获取不相关的数据,因此不能在SQL级别使用联接。
但JSON根本不在乎你给它提供什么,或者如何提供。只需构建适当的PHP级别的数据结构,例如
$data = array();
$data['streamdata'] = array();
... insert data from 'streamdata' query...
$data['streamdata_comments'] = array();
... insert comment data ...
$data['users'] = array();
... insert user data ...
它将为您提供一个包含来自每个查询的数据的3向数组。然后,您将整个$data结构传递给json_encode,然后,您就可以在一个数据结构中获得3个未分级的查询,而无需每次接触SQL连接。
以前的一些答案建议您不能连接不相关的表,但这些显然不是不相关的表格。streamdata和streamdata_comments表的关系非常密切,users表将其他表中的用户ID值映射到名称。
在SQL级别,这些可以很容易地组合:
SELECT d.*, c.*, u.*
FROM streamdata AS d
JOIN streamdata_comments AS c ON d.streamitem_ID = c.comment_streamitem
JOIN users AS u ON u.user_id = c.comment_poster
WHERE c.comment_poster = '$following_string'
AND d.streamitem_id < '$lastID'
AND (d.streamitem_target = '$following_string' OR
d.streamitem_creator = '$following_string');
结果是否有意义包装成JSON字符串是另一回事,我无法对此发表意见。这将为您提供与每个流项目相关联的每个评论的评论信息中的一条记录。
您正在获取不相关的数据。只有当要联接的数据具有关系时,联接数据才可用。
你不能加入苹果、奶牛和猴子的行列。