1

Possible Duplicate:
Function to Calculate Median in Sql Server

I have a table like this:

SET ANSI_NULLS ON
GO
SET QUOTED_IDENTIFIER ON
GO
SET ANSI_PADDING ON
GO
CREATE TABLE [dbo].[cars](
    [id] [int] IDENTITY(1,1) NOT NULL,
    [sp] [int] NOT NULL,
    [dst] [int] NOT NULL,
    [type] [varchar](10) NULL,
 CONSTRAINT [PK_id] PRIMARY KEY CLUSTERED 
(
    [id] ASC
)WITH (PAD_INDEX  = OFF, STATISTICS_NORECOMPUTE  = OFF, IGNORE_DUP_KEY = OFF, ALLOW_ROW_LOCKS  = ON, ALLOW_PAGE_LOCKS  = ON) ON [PRIMARY]
) ON [PRIMARY]
GO
SET ANSI_PADDING OFF
GO
SET IDENTITY_INSERT [dbo].[cars] ON
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (1, 4, 2, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (2, 4, 10, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (3, 7, 4, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (4, 7, 22, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (5, 8, 16, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (6, 9, 10, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (7, 10, 18, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (8, 10, 26, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (9, 10, 34, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (10, 11, 17, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (11, 11, 28, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (12, 12, 14, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (13, 12, 20, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (14, 12, 24, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (15, 12, 28, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (16, 13, 26, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (17, 13, 34, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (18, 13, 34, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (19, 13, 46, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (20, 14, 26, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (21, 14, 36, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (22, 14, 60, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (23, 14, 80, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (24, 15, 20, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (25, 15, 26, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (26, 15, 54, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (27, 16, 32, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (28, 16, 40, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (29, 17, 32, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (30, 17, 40, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (31, 17, 50, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (32, 18, 42, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (33, 18, 56, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (34, 18, 76, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (35, 18, 84, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (36, 19, 36, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (37, 19, 46, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (38, 19, 68, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (39, 20, 32, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (40, 20, 48, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (41, 20, 52, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (42, 20, 56, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (43, 20, 64, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (44, 22, 66, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (45, 23, 54, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (46, 24, 70, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (47, 24, 92, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (48, 24, 93, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (49, 24, 120, NULL)
INSERT [dbo].[cars] ([id], [sp], [dst], [type]) VALUES (50, 25, 85, NULL)
SET IDENTITY_INSERT [dbo].[cars] OFF

I can calculate agerage using group by clause

SELECT dst, AVG(sp) AS average
FROM dbo.cars
GROUP BY dbo.cars.dst

but I'm not able to find MEDIAN function in SQLServer. How can I calculate median like this?

SELECT dst, MEDIAN(sp) AS median
FROM dbo.cars
GROUP BY dbo.cars.dst

marked as duplicate by Jacob, Peter Lang, Jamiec, Mikael Eriksson, Bo Persson Aug 17 '11 at 22:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Thanks for this link! – jrara Aug 17 '11 at 11:43
  • 1
    It's possible to create an aggregate in CLR. It's very tricky but it would perform well. – Michael J Swart Aug 17 '11 at 11:49
5

You need to change your code to use decimals as follows

 SELECT
   dst,
   AVG(sp)
FROM
(
   SELECT
      dst,
      cast(sp as decimal(5,2)) sp,
      ROW_NUMBER() OVER (
         PARTITION BY dst 
         ORDER BY sp ASC, id ASC) AS RowAsc,
      ROW_NUMBER() OVER (
         PARTITION BY dst 
         ORDER BY sp DESC, id DESC) AS RowDesc
   FROM dbo.cars SOH
) x
WHERE 
   RowAsc IN (RowDesc, RowDesc - 1, RowDesc + 1)
GROUP BY dst
ORDER BY dst;

Currently, the AVG command is performed on an int, therefore the result is an int

1

I think I found the solution, but this does not seem to produce even numbers (like 10.5)

SELECT
   dst,
   AVG(sp)
FROM
(
   SELECT
      dst,
      sp,
      ROW_NUMBER() OVER (
         PARTITION BY dst 
         ORDER BY sp ASC, id ASC) AS RowAsc,
      ROW_NUMBER() OVER (
         PARTITION BY dst 
         ORDER BY sp DESC, id DESC) AS RowDesc
   FROM dbo.cars SOH
) x
WHERE 
   RowAsc IN (RowDesc, RowDesc - 1, RowDesc + 1)
GROUP BY dst
ORDER BY dst;
  • This should work fine - guess you found Adams link. What is the issue with even numbers? – Daryl Wenman-Bateson Aug 17 '11 at 11:53
  • 1
    10.5 is not an even number! – onedaywhen Aug 17 '11 at 11:59
  • I meant that MEDIAN(1, 2, 3, 4) should be 2.5, and MEDIAN(1,2,3,4,5) should be 3. This query does not seem to produce these 0.5 precision numbers. – jrara Aug 17 '11 at 12:33
0

You can use partition by clause and ranking functions

  • How do ranking functions help for MEDIAN? – Michael J Swart Aug 17 '11 at 11:47
  • As you can see in the other answers: PARTITION BY clause and ranking function is used (ROW_NUMBER()). I didn't have enough time to write query and I made just a suggestion. So, can we use ranking functions for finding Median or not? In my opinion - we can. – Max Aug 17 '11 at 13:58
  • That makes sense. (That's not my -1 btw) – Michael J Swart Aug 17 '11 at 18:17

Not the answer you're looking for? Browse other questions tagged or ask your own question.