[LeetCode] 196.Delete Duplicate Emails 刪除重復(fù)郵箱
Write a SQL query to delete all duplicate email entries in a table named Person, keeping only unique emails based on its smallest Id.
+----+------------------+
| Id | Email |
+----+------------------+
| 1 | john@example.com |
| 2 | bob@example.com |
| 3 | john@example.com |
+----+------------------+
Id is the primary key column for this table.
For example, after running your query, the above Person table should have the following rows:
+----+------------------+
| Id | Email |
+----+------------------+
| 1 | john@example.com |
| 2 | bob@example.com |
+----+------------------+
這道題讓我們刪除重復(fù)郵箱���,那我們可以首先找出所有不重復(fù)的郵箱����,然后取個(gè)反就是重復(fù)的郵箱����,都刪掉即可,那么我們?nèi)绾握页鏊胁恢貜?fù)的郵箱呢,我們可以按照郵箱群組起來(lái)�����,然后用Min關(guān)鍵字挑出較小的�����,然后取補(bǔ)集刪除即可:
解法一:
DELETE FROM Person WHERE Id NOT IN
(SELECT Id FROM (SELECT MIN(Id) Id FROM Person GROUP BY Email) p);
我們也可以使用內(nèi)交讓兩個(gè)表以郵箱關(guān)聯(lián)起來(lái)����,然后把相同郵箱且Id大的刪除掉���,參見(jiàn)代碼如下:
解法二:
DELETE p2 FROM Person p1 JOIN Person p2
ON p2.Email = p1.Email WHERE p2.Id > p1.Id;
我們也可以不用Join�,而直接用where將兩表關(guān)聯(lián)起來(lái)也行:
解法三:
DELETE p2 FROM Person p1, Person p2
WHERE p1.Email = p2.Email AND p2.Id > p1.Id;
類似題目:
Duplicate Emails
參考資料:
https://leetcode.com/discuss/61176/simple-solution-using-a-self-join
https://leetcode.com/discuss/48403/my-answer-delete-duplicate-emails-with-double-nested-query
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