Write a SQL query to find all numbers that appear at least three times consecutively.
+----+-----+ | Id | Num | +----+-----+ | 1 | 1 | | 2 | 1 | | 3 | 1 | | 4 | 2 | | 5 | 1 | | 6 | 2 | | 7 | 2 | +----+-----+
For example, given the above Logs table, 1 is the only number that appears consecutively for at least three times.
這道題給了我們一個Logs表,讓我們找Num列中連續出現相同數字三次的數字,那么由於需要找三次相同數字,所以我們需要建立三個表的實例,我們可以用l1分別和l2, l3內交,l1和l2的Id下一個位置比,l1和l3的下兩個位置比,然后將Num都相同的數字返回即可:
解法一:
SELECT DISTINCT l1.Num FROM Logs l1 JOIN Logs l2 ON l1.Id = l2.Id - 1 JOIN Logs l3 ON l1.Id = l3.Id - 2 WHERE l1.Num = l2.Num AND l2.Num = l3.Num;
下面這種方法沒用用到Join,而是直接在三個表的實例中查找,然后把四個條件限定上,就可以返回正確結果了:
解法二:
SELECT DISTINCT l1.Num FROM Logs l1, Logs l2, Logs l3 WHERE l1.Id = l2.Id - 1 AND l2.Id = l3.Id - 1 AND l1.Num = l2.Num AND l2.Num = l3.Num;
再來看一種畫風截然不同的方法,用到了變量count和pre,分別初始化為0和-1,然后需要注意的是用到了IF語句,MySQL里的IF語句和我們所熟知的其他語言的if不太一樣,相當於我們所熟悉的三元操作符a?b:c,若a真返回b,否則返回c,具體可看這個帖子。那么我們先來看對於Num列的第一個數字1,pre由於初始化是-1,和當前Num不同,所以此時count賦1,此時給pre賦為1,然后Num列的第二個1進來,此時的pre和Num相同了,count自增1,到Num列的第三個1進來,count增加到了3,此時滿足了where條件,t.n >= 3,所以1就被select出來了,以此類推遍歷完整個Num就可以得到最終結果:
解法三:
SELECT DISTINCT Num FROM ( SELECT Num, @count := IF(@pre = Num, @count + 1, 1) AS n, @pre := Num FROM Logs, (SELECT @count := 0, @pre := -1) AS init ) AS t WHERE t.n >= 3;
參考資料:
https://leetcode.com/discuss/54463/simple-solution
https://leetcode.com/discuss/87854/simple-sql-with-join-1484-ms
https://leetcode.com/discuss/69767/two-solutions-inner-join-and-two-variables