将excel公式转换为SQL查询
将excel公式转换为SQL查询
提问于 2016-07-14 14:05:13
这是Excel文件,我可以在这里使用公式获取TAT ORIG
=IF((X3-W3)*24<=24,(X3-W3)*24,
IF(AND(WEEKDAY(W3,2)<6,WEEKDAY(X3,2)<6),(NETWORKDAYS(W3,X3)-1+MOD(X3,1)-MOD(W3,1))*24,
IF(OR(WEEKDAY(W3,2)>5,WEEKDAY(X3,2)>5),(NETWORKDAYS(W3,X3)*24))))这是我用来在EXCEL中获得TAT ORIG值的公式。
我需要转换相同的公式,或者在现有SQL表中用tat_orig来获得相同的值。
在这个表中,我需要使用SQL查询计算tat_orig:
回答 1
Stack Overflow用户
发布于 2016-07-20 20:47:08
哇,我没想到会花这么长时间。我要说的是:
--Network days shim
IF OBJECT_ID(N'NETWORKDAYS', N'FN') IS NOT NULL
DROP FUNCTION dbo.NETWORKDAYS;
GO
CREATE FUNCTION dbo.NETWORKDAYS(@d1 datetime, @d2 datetime )
RETURNS int
AS
BEGIN
DECLARE @w1 int = DATEPART(weekday, @d1);
DECLARE @w2 int = DATEPART(weekday, @d1);
DECLARE @dd float = FLOOR(DATEDIFF(ms, @d1, @d2) / 86400000.0);
-- network days is based on a holidays table; I just added this date arbitrarily so that
-- the results match what Excel says
DECLARE @holidays TABLE(holiday datetime);
INSERT INTO @holidays VALUES
('2016-06-15');
RETURN (@dd + @w2 - @w1) / 7 * 5 +
@w2 - @w1 + 1 +
IIF(@w2 = 7, -1, 0) +
IIF(@w1 = 1, -1, 0) +
(SELECT COUNT(*) FROM @holidays WHERE @d1 <= holiday AND holiday < @d2);
END
GO
-- turn around time shim
IF OBJECT_ID(N'TURNAROUND', N'FN') IS NOT NULL
DROP FUNCTION dbo.TURNAROUND;
GO
CREATE FUNCTION dbo.TURNAROUND(@d1 datetime, @d2 datetime)
RETURNS float
AS
BEGIN
DECLARE @w1 int = DATEPART(weekday, @d1);
DECLARE @w2 int = DATEPART(weekday, @d1);
DECLARE @nd int = dbo.NETWORKDAYS(@d1, @d2);
DECLARE @hd float = DATEDIFF(ms, @d1, @d2) / 3600000.0;
DECLARE @td float = DATEDIFF(ms, CAST(@d1 AS TIME), CAST(@d2 AS TIME)) / 86400000.0;
RETURN (
IIF(@hd <= 24.0,
@hd,
IIF(@w1 < 6 AND @w2 < 6,
24 * (@nd - 1 + @td),
IIF(@w2 > 5 OR @w1 > 5,
24 * @nd, 0))));
END
GO
-- the data
DECLARE @items TABLE
(
time_created datetime,
time_responded datetime
);
INSERT INTO @items VALUES
('2016-06-10 15:42:00.000', '2016-06-15 03:03:00.000'),
('2016-06-15 01:28:00.000', '2016-06-15 03:03:00.000'),
('2016-06-14 07:46:00.000', '2016-06-15 03:03:00.000'),
('2016-07-04 05:35:25.000', '2016-07-04 19:05:48.000'),
('2016-07-04 04:56:09.000', '2016-07-04 18:29:28.000'),
('2016-07-04 09:15:33.000', '2016-07-04 22:08:43.000'),
('2016-07-04 08:44:24.000', '2016-07-04 21:40:57.000'),
('2016-07-04 07:14:51.000', '2016-07-04 21:39:24.000');
-- the results
SELECT time_created, time_responded, dbo.TURNAROUND(time_created, time_responded) AS [TAT Orig] FROM @items;困难的部分是计算出日期的算术。您不必声明函数--它们是为了清晰和计算中间值而存在的,但从技术上讲,您应该能够在SELECT语句中使用返回值。
顺便说一句,如果您的计算列采用下一行的值,那么您就不走运了--这在SQL中并不是不可能的,但它是接近的。
我希望这能帮到你!
编辑:
我加了日期差的大垫片。我增加了一年的测试数据。
--Big datediff shim
IF OBJECT_ID(N'DATEDIFFBIG', N'FN') IS NOT NULL
DROP FUNCTION dbo.DATEDIFFBIG;
GO
CREATE FUNCTION DATEDIFFBIG(@d1 datetime, @d2 datetime)
RETURNS bigint
AS
BEGIN
RETURN CONVERT(bigint, DATEDIFF(day, @d1, @d2)) * 86400000 -
DATEDIFF(second, DATEADD(day, DATEDIFF(day, 0, @d1), 0), @d1) * 1000 +
DATEDIFF(second, DATEADD(day, DATEDIFF(day, 0, @d2), 0), @d2) * 1000;
END
GO
--Network days shim
IF OBJECT_ID(N'NETWORKDAYS', N'FN') IS NOT NULL
DROP FUNCTION dbo.NETWORKDAYS;
GO
CREATE FUNCTION dbo.NETWORKDAYS(@d1 datetime, @d2 datetime)
RETURNS int
AS
BEGIN
DECLARE @w1 int = DATEPART(weekday, @d1);
DECLARE @w2 int = DATEPART(weekday, @d1);
DECLARE @dd float = FLOOR(dbo.DATEDIFFBIG(@d1, @d2) / 86400000.0);
-- network days is based on a holidays table; I just added this date arbitrarily so that
-- the results match what Excel says
DECLARE @holidays TABLE(holiday datetime);
INSERT INTO @holidays VALUES
('2016-06-15');
RETURN (@dd + @w2 - @w1) / 7 * 5 +
@w2 - @w1 + 1 +
IIF(@w2 = 7, -1, 0) +
IIF(@w1 = 1, -1, 0) +
(SELECT COUNT(*) FROM @holidays WHERE @d1 <= holiday AND holiday < @d2);
END
GO
-- turn around time shim
IF OBJECT_ID(N'TURNAROUND', N'FN') IS NOT NULL
DROP FUNCTION dbo.TURNAROUND;
GO
CREATE FUNCTION dbo.TURNAROUND(@d1 datetime, @d2 datetime)
RETURNS float
AS
BEGIN
DECLARE @w1 int = DATEPART(weekday, @d1);
DECLARE @w2 int = DATEPART(weekday, @d1);
DECLARE @nd int = dbo.NETWORKDAYS(@d1, @d2);
DECLARE @hd float = dbo.DATEDIFFBIG(@d1, @d2) / 3600000.0;
DECLARE @td float = dbo.DATEDIFFBIG(CAST(@d1 AS TIME), CAST(@d2 AS TIME)) / 86400000.0;
RETURN (
IIF(@hd <= 24.0,
@hd,
IIF(@w1 < 6 AND @w2 < 6,
24 * (@nd - 1 + @td),
IIF(@w2 > 5 OR @w1 > 5,
24 * @nd, 0))));
END
GO
-- the data
DECLARE @items TABLE
(
time_created datetime,
time_responded datetime
);
INSERT INTO @items VALUES
('2016-06-10 15:42:00.000', '2016-06-15 03:03:00.000'),
('2016-06-15 01:28:00.000', '2016-06-15 03:03:00.000'),
('2016-06-14 07:46:00.000', '2016-06-15 03:03:00.000'),
('2016-07-04 05:35:25.000', '2016-07-04 19:05:48.000'),
('2016-07-04 04:56:09.000', '2016-07-04 18:29:28.000'),
('2016-07-04 09:15:33.000', '2016-07-04 22:08:43.000'),
('2016-07-04 08:44:24.000', '2016-07-04 21:40:57.000'),
('2016-07-04 07:14:51.000', '2016-07-04 21:39:24.000'),
('2015-07-04 07:14:51.000', '2016-07-04 21:39:24.000');
-- the results
SELECT time_created, time_responded, dbo.TURNAROUND(time_created, time_responded) AS [TAT Orig] FROM @items;页面原文内容由Stack Overflow提供。腾讯云小微IT领域专用引擎提供翻译支持
原文链接:
https://stackoverflow.com/questions/38376386
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