一、题目描述
表 Weather
±--------------±--------+
| Column Name | Type |
±--------------±--------+
| id | int |
| recordDate | date |
| temperature | int |
±--------------±--------+
id 是这个表的主键
该表包含特定日期的温度信息
编写一个 SQL 查询,来查找与之前(昨天的)日期相比温度更高的所有日期的 id 。
返回结果 不要求顺序 。
查询结果格式如下例:
Weather
±—±-----------±------------+
| id | recordDate | Temperature |
±—±-----------±------------+
| 1 | 2015-01-01 | 10 |
| 2 | 2015-01-02 | 25 |
| 3 | 2015-01-03 | 20 |
| 4 | 2015-01-04 | 30 |
±—±-----------±------------+
Result table:
±—+
| id |
±—+
| 2 |
| 4 |
±—+
2015-01-02 的温度比前一天高(10 -> 25)
2015-01-04 的温度比前一天高(20 -> 30)
二、题解
方法一:使用开窗函数LAG和日期相减函数DATEDIFF
# Write your MySQL query statement below
SELECT
id Id
FROM
(
SELECT
id,recordDate,Temperature,
LAG(Temperature,1,Temperature) over(order by recordDate) yest_Temperature,
LAG(recordDate,1,recordDate) over(order by recordDate) yest_recordDate
FROM
Weather
)t
WHERE t.Temperature>t.yest_Temperature and DATEDIFF(recordDate,yest_recordDate)=1
;
方法二:使用join和DATEDIFF
# Write your MySQL query statement below
SELECT
t1.id Id
FROM
Weather t1 JOIN Weather t2 ON DATEDIFF(t1.recordDate,t2.recordDate)=1
and t1.Temperature>t2.Temperature
;
