我有这个代码,它从MySQLi中的两个表中获取数据。 首先必须从表1中获取标题,描述,状态和project_id,然后使用表1中的id从表2中获取名称。
有更好/更快的方法吗?表中有大约600行,运行此查询大约需要5秒。我还要补充一点,这个例子有点简化,所以请不要对db-structure进行评论。
<?php
$results = $connect()->db_connection->query(
'SELECT title, description, status, project_id
FROM table
WHERE created_by ='.$user_id
);
if ($results) {
while ($result = $results->fetch_object()) {
$res = $connect()->db_connection->query(
"SELECT name FROM projects WHERE id = ".$result->project_id
);
if ($res) {
while ($r = $res->fetch_object()) {
echo $r->name;
}
}
echo $result->title;
echo $result->status;
}
}
?>
答案 0 :(得分:1)
Use Query:
SELECT title,description,status,project_id
FROM table tb
inner join projects pr on pr.id = tb.project_id
WHERE created_by = $user_id
答案 1 :(得分:1)
尝试在查询中使用JOIN。
您可以在此处找到此命令的示例和说明:http://www.w3schools.com/sql/sql_join.asp
还查看此信息图表: http://www.codeproject.com/KB/database/Visual_SQL_Joins/Visual_SQL_JOINS_orig.jpg
答案 2 :(得分:0)
您可以在JOIN上使用project_id:
$results = $connect()->db_connection->query('SELECT t.title title,t.description,t.status status,t.project_id, p.name name FROM `table` t JOIN projects p ON p.id= t.project_id WHERE t.created_by ='.$user_id);
if($results){
while($result = $results->fetch_object()){
echo $result->name;
echo $result->title;
echo $result->status;
}
}
表格中有别名 - t table和p projects。
另外为了加快速度,请在project_id表格中为table添加索引,如果还没有完成:
$connect()->db_connection->query('ALTER TABLE `table` ADD INDEX `product_id`');