极客教程MySQL 如何模拟 MySQL 的 INTERSECT 查询?
由于我们无法在 MySQL 中使用 INTERSECT 查询,因此我们将使用 IN 运算符来模拟 INTERSECT 查询。可以通过以下示例理解。
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示例
在此示例中,我们有两个表,名称分别为 Student_detail 和 Student_info,包含以下数据。
mysql> Select * from Student_detail;
+-----------+---------+------------+------------+
| studentid | Name | Address | Subject |
+-----------+---------+------------+------------+
| 101 | YashPal | Amritsar | History |
| 105 | Gaurav | Chandigarh | Literature |
| 130 | Ram | Jhansi | Computers |
| 132 | Shyam | Chandigarh | Economics |
| 133 | Mohan | Delhi | Computers |
| 150 | Rajesh | Jaipur | Yoga |
| 160 | Pradeep | Kochi | Hindi |
+-----------+---------+------------+------------+
7 行(0.00 秒)
mysql> Select * from Student_info;
+-----------+-----------+------------+-------------+
| studentid | Name | Address | Subject |
+-----------+-----------+------------+-------------+
| 101 | YashPal | Amritsar | History |
| 105 | Gaurav | Chandigarh | Literature |
| 130 | Ram | Jhansi | Computers |
| 132 | Shyam | Chandigarh | Economics |
| 133 | Mohan | Delhi | Computers |
| 165 | Abhimanyu | Calcutta | Electronics |
+-----------+-----------+------------+-------------+
6 行(0.00 秒)
现在,使用 IN 运算符的以下查询将模拟 INTERSECT,以返回在两个表中都存在的所有“studentid”值。
mysql> Select Student_detail.studentid FROM Student_detail WHERE student_detail.studentid IN(SELECT Student_info.studentid FROM Student_info);
+-----------+
| studentid |
+-----------+
| 101 |
| 105 |
| 130 |
| 132 |
| 133 |
+-----------+
5 行(0.06 秒)