我在SQL查询中使用sum()寻找帮助:

SELECT links.id,
       count(DISTINCT stats.id) as clicks,
       count(DISTINCT conversions.id) as conversions,
       sum(conversions.value) as conversion_value
FROM links
LEFT OUTER JOIN stats ON links.id = stats.parent_id
LEFT OUTER JOIN conversions ON links.id = conversions.link_id
GROUP BY links.id
ORDER BY links.created desc;


我使用DISTINCT是因为我正在进行“分组依据”,这可以确保同一行的计数不超过一次。

问题是SUM(conversions.value)对每行的“值”计数超过一次(由于分组依据)

我基本上想为每个DISTINCT conversions.id做SUM(conversions.value)

那可能吗?

最佳答案

我可能是错的,但据我了解


conversions.id是表转换的主键
stats.id是表统计信息的主键


因此,对于每个conversions.id,您最多影响一个link.id。

您的要求有点像做2组的笛卡尔积:

[clicks]
SELECT *
FROM links
LEFT OUTER JOIN stats ON links.id = stats.parent_id

[conversions]
SELECT *
FROM links
LEFT OUTER JOIN conversions ON links.id = conversions.link_id


对于每个链接,您将获得sizeof([clicks])x sizeof([conversions])行

如前所述,您可以通过以下方式获得请求中唯一身份转化的次数:

count(distinct conversions.id) = sizeof([conversions])


这种独特的方法可以删除笛卡尔积中的所有[clicks]行

但显然

sum(conversions.value) = sum([conversions].value) * sizeof([clicks])


就您而言,

count(*) = sizeof([clicks]) x sizeof([conversions])
count(*) = sizeof([clicks]) x count(distinct conversions.id)


你有

sizeof([clicks]) = count(*)/count(distinct conversions.id)


所以我会用

SELECT links.id,
   count(DISTINCT stats.id) as clicks,
   count(DISTINCT conversions.id) as conversions,
   sum(conversions.value)*count(DISTINCT conversions.id)/count(*) as conversion_value
FROM links
LEFT OUTER JOIN stats ON links.id = stats.parent_id
LEFT OUTER JOIN conversions ON links.id = conversions.link_id
GROUP BY links.id
ORDER BY links.created desc;


让我发布!
杰罗姆

关于mysql - MYSQL sum()用于不同的行,我们在Stack Overflow上找到一个类似的问题:https://stackoverflow.com/questions/21496518/

10-12 20:54