我有一個表access,其中存盤員工訪問系統的時間以及他注銷的時間。
access_id int(11) -- PK, auto-generated
employee_id (11)
in_time bigint(20)
out_time bigint(20)
我需要的是員工外出的平均時間(員工上一次訪問的 in_time - out_time) -對于所有員工。
到目前為止我所管理的:
我可以設法使用這個(相當復雜的)查詢來計算單個員工的平均值
SELECT AVG (b.in_time - a.out_time) / 60000 AS avginminutes
FROM access a CROSS JOIN access b
WHERE
b.access_id =
(SELECT MIN(c.access_id)
FROM access c
WHERE c.access_id > a.access_id
and c.employee_id = 1765708 )
AND a.employee_id = 1765708
AND b.in_time - a.out_time != 0
ORDER BY a.access_id ASC;
我的主要問題是,如何修改此查詢以便計算所有員工的平均值?在花了很多時間之后,我沒有得到任何結果。
其次(但不重要),有沒有辦法可以簡化查詢?
樣本資料:
access_id|employee_id|in_time |out_time
|1 |1765708 |1643720400000|1643727600000
|2 |1765708 |1643728200000|1643734800000
|3 |1765708 |1643735100000|1643738400000
|4 |4344524 |1646125200000|1646128800000
|5 |4344524 |1646129100000|1646134200000
|6 |4344524 |1646134800000|1646142000000
|7 |4344524 |1646149200000|1646156400000
MySQL版本:5.5
uj5u.com熱心網友回復:
(The average time when the employee was out)
=
(MAX(out_time) - MIN(in_time) - SUM(out_time - in_time)) / (COUNT(*) - 1)
IE
SELECT employee_id,
(MAX(out_time) - MIN(in_time) - SUM(out_time - in_time)) / (COUNT(*) - 1) / 60000 avginminutes
FROM access
GROUP BY 1;
如果某個員工只有一行,當然會失敗或產生 NULL(取決于 SQL 模式)。在嚴格模式下 - 根據 CASE 進行調整。
uj5u.com熱心網友回復:
如果您使用的是 MySQL 8,您可以使用LAG函式來查找每行的先前退出時間:
WITH cte AS (
SELECT
employee_id,
LAG(out_time) OVER (PARTITION BY employee_id ORDER BY in_time) AS prev_out,
in_time
FROM t
)
SELECT employee_id, AVG(in_time - prev_out)
FROM cte
GROUP BY employee_id
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