1

我讨厌我不得不问,但我无法处理它。

我有这张桌子votes

在此处输入图像描述

type=1是赞成票,type=0将是反对票

我想要这个输出:

[
  {'video': 'best-of-mehrwert', 'upvote': 2, 'downvote': 0},
  {...}
]

我正在使用medoo:

<?php
$votes = $database->query(
  // 'SELECT COUNT(video) as votes, video FROM votes GROUP BY video, type'
  '
    SELECT video,COUNT(*) as counts
    FROM votes
    GROUP BY video,type;

  '
)->fetchAll(PDO::FETCH_ASSOC);

echo json_encode($votes);

这给了我

[{"video":"anlaesse","counts":"1"},{"video":"best-of-mehrwert","counts":"2"}]

我如何像“upvotes”一样“添加一列”,即type = 1且type = 0的条目?

4

3 回答 3

2

两种变体:

select
  video,
  sum(case when type=1 then 1 else 0 end) as upvote,
  sum(case when type=0 then 1 else 0 end) as downvote
from votes
group by video


select
  video,
  sum(type) as upvote,
  sum(1-type) as downvote
from votes
group by video

http://www.sqlfiddle.com/#!9/c73f2a/5

于 2017-01-05T17:59:52.207 回答
1

我认为SUM为您的条件匹配的每一行增加 1 可能是最简单的:

SELECT 
    video, 
    SUM(CASE type WHEN 1 THEN 1 ELSE 0 END) as upvotes,
    SUM(CASE type WHEN 0 THEN 1 ELSE 0 END) as downvotes 
FROM 
    votes
GROUP BY 
    video;

type请注意,您应该从中省略GROUP BY,以便为每个视频返回单行。

于 2017-01-05T17:58:47.827 回答
0

您可以使用case表达式仅计算您感兴趣的选票类型:

SELECT   video, 
         COUNT(CASE type WHEN 1 THEN 1 END) as upvotes
         COUNT(CASE type WHEN 0 THEN 1 END) as downvotes
FROM     votes
GROUP BY video, type;
于 2017-01-05T17:59:28.190 回答