SQL:如何使用带有 case 语句的外部别名进行子查询

问题描述 投票:0回答:1

问题

如何创建使用 case 语句的子查询的外列值的子查询?

SQL 示例:

SELECT
 name,
 average,
 crnt,
 goodFactor
FROM
(
 "Crispy Taco" AS name,
  ( SELECT avg(x)
    FROM (
     SELECT COUNT() x
     FROM tacos
     WHERE orderDate > DATEADD(DAY,  -1, GETDATE()))   <--- THE AVERAGE PRIOR TO TODAY
  ) AS average,
  COUNT(*) AS crnt,
  (
    SELECT
    CASE WHEN crnt < average    <---- PROBLEM HERE : Missing columns 'crnt' and 'average'
     THEN "not good"
     ELSE "pretty good"
    END
  ) AS goodFactor
)
from tacos

问题:

'

crnt
' 和 '
average
' 是 'goodFactor' 子查询的 '
missing columns
'

示例数据:(数据库条目)

+-------------+---------+---------+ | Name | Ordered | Date | +-------------+---------+---------+ | Crispy Taco | 1 | 8/29/24 | | Crispy Taco | 1 | 8/29/24 | | Crispy Taco | 1 | 8/29/24 | | Crispy Taco | 1 | 8/29/24 | | Crispy Taco | 1 | 8/29/24 | | Crispy Taco | 1 | 8/30/24 | | Crispy Taco | 1 | 8/30/24 | | Crispy Taco | 1 | 8/30/24 | | Crispy Taco | 1 | 8/30/24 | | Crispy Taco | 1 | 8/30/24 | | Crispy Taco | 12 | 8/31/24 | <---- ASSUME QUERY INVOKED THIS DAY PRODUCING THE TABLE BELOW +-------------+---------+---------+ 
预期结果

如果“
crnt
”值大于计算的“
average
”
然后返回“
相当好”,否则返回“不好

预期结果

+-------------+---------------+---------+--------------------+
|    Name     | Daily Average | Current | GoodFactor         |
+-------------+---------------+---------+--------------------+
| Crispy Taco |       5       |      12 | pretty Good        |
+-------------+---------------+---------+--------------------+

    

	


sql

select

subquery

case


1个回答




    
    
    

        

            

                

                    
0
投票

                    
                

            

        

        
这应该适用于所有标准 DBMS - 今天,即 2024 年 8 月 31 日,否则您
必须将所有地方的 
CURRENT_DATE
 替换为 2024 年 8 月 31 日,并使用该样本数据:


WITH                                                                                                                                                                           
-- your input , don't use in final query
indata(name,ordered,date) AS (
          SELECT 'Crispy Taco', 1,DATE '08/29/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/29/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/29/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/29/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/29/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/30/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/30/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/30/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/30/24'
UNION ALL SELECT 'Crispy Taco', 1,DATE '08/30/24'
UNION ALL SELECT 'Crispy Taco',12,DATE '08/31/24'
)
-- real query starts here, replace following comma with "WITH"
,
-- need a query grouping by day to get the daily sums
-- before today
daily AS (
  SELECT 
    name
  , date
  , SUM(ordered) AS per_day
  FROM indata
  WHERE date < CURRENT_DATE
  GROUP BY  
    name
  , date
)
,
-- and one summing the current day
current AS (
  SELECT
    name
  , date
  , SUM(ordered) AS current
  FROM indata
  WHERE date=CURRENT_DATE
  GROUP BY
    name
  , date
)
SELECT
  daily.name
, AVG(per_day) AS "Daily Average"
, MAX(current) AS current
, CASE WHEN MAX(current) < AVG(per_day)
    THEN 'not good'
    ELSE 'pretty good'
  END AS good_factor
FROM daily
JOIN current ON daily.name = current.name
GROUP BY  
  daily.name;


名字每日平均当前好因素脆玉米饼512还不错






















    

	

    

    


  

  

    
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