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I have a table with the following columns

source_title, country, language, source_url

I need to generate a query that will give me the following:

country, source_title count, percentage of sources

and

language, source_title count, percentage of sources

basically map the country to all sources and get the count and percentages of this mapping

not the row level data like

SELECT [source_id]
  ,[source_title]
  ,[source_url]
  ,[moreover]
  ,[country]
  ,[lang]
FROM [NewsDatabase].[dbo].[NewsSourcesMatch]
order by country

For example if there are 10 records where country is USA then

country    count(source_title)   % source_title
USA            10                    10/1000 * 100

sorry everyone here is sample data

source_title source_url moreover country lang

Hadeland http://www.hadeland.net Hadeland NORWAY Norwegian

Business Wire http://www.businesswire.com Business Wire UNITED STATES English

Adelaide Now http://www.adelaidenow.com.au Adelaide Now AUSTRALIA English

MSNBC Local http://www.msnbc.msn.com MSNBC Local UNITED STATES English

UDN.com http://forum.udn.com UDN.com TAIWAN Chinese

CBS3 Philadelphia http://cbs3.com CBS3 Philadelphia UNITED STATES English

104.7 Edge Radio http://www.1047edgeradio.com 104.7 Edge Radio UNITED STATES English

so there are four from UNITED STATES so shouldnt the total percentage be 4/7* 100

share|improve this question
    
what do you mean by percentage of sources and language and percentage of sources? Can you provide some sample data and desired output? –  Abe Miessler Nov 3 '10 at 18:01
    
the percentage of sources that match a specific country - like out of 1000 entries 10 match USA –  vbNewbie Nov 3 '10 at 18:05
    
to clarify: count of source_title per country, and what percent of all rows this count is. Ditto language? –  gbn Nov 3 '10 at 18:20
add comment

2 Answers

up vote 1 down vote accepted

You can use the OVER clause to span the entire dataset with COUNT to give total number of rows in the same query. Then you have both counts (per country and all rows) to generate the %

Should be something like:

SELECT  [Country]
    ,   [source_title_count] =  COUNT(*)
    ,   [source_total_count]  = COUNT(*) OVER ()
    ,   [source_percent]  = 100.0 * COUNT(*) / COUNT(*) OVER () 
FROM [dbo].[NewsSourcesMatch]
GROUP   BY [Country]

SELECT  [lang]
    ,   [source_title_count] =  COUNT(*)
    ,   [source_total_count]  = COUNT(*) OVER ()
    ,   [source_percent]  = 100.0 * COUNT(*) / COUNT(*) OVER () 
FROM [dbo].[NewsSourcesMatch]
GROUP   BY [lang]

If not, please add sample data and required output.

Or this?

SELECT  [Country]
    ,   COUNT(DISTINCT [source_title)) AS source_title_count
    ,   COUNT(*) source_country_count
    ,   100.0 * COUNT(*) / COUNT(DISTINCT [source_title)) source_country_count
FROM [dbo].[NewsSourcesMatch]
GROUP  BY [Country]

Can't test this (no SQL on this PC) but based on MSDN OVER clause

SELECT  [Country]
    ,   [source_title_count] =  COUNT(*)
     --attempt 1
    ,   [source_total_count]  = COUNT(*) OVER (Country)
    ,   [source_percent]  = 100.0 * COUNT(*) / COUNT(*) OVER (Country) 
     --attempt 2
    ,   [source_total_count]  = COUNT(*) OVER (PARTITION BY Country)
    ,   [source_percent]  = 100.0 * COUNT(*) / COUNT(*) OVER (PARTITION BY Country) 
FROM [dbo].[NewsSourcesMatch]
GROUP   BY [Country]
share|improve this answer
    
Thanks for the response. One question, the source total count should that not be total records in table or how is that calculated. everything else is right –  vbNewbie Nov 3 '10 at 18:23
    
the COUNT(*) over() just gives you the number of rows in the dataset, no? –  Noel Abrahams Nov 3 '10 at 18:25
    
yes, but the total records in the table is 32000 and the source_total_count for each country is 204 –  vbNewbie Nov 3 '10 at 18:27
    
@vbNewbie: see my last line please: define what you want more clearly with sample data. On the face of it, you're asking for a contradictory count. –  gbn Nov 3 '10 at 18:33
    
Thank you for your patience, finally found the right combination using the over clause. Bless you for your assistance –  vbNewbie Nov 3 '10 at 19:02
add comment

Something like this perhaps:

;WITH T AS
(
SELECT  [Country]
    ,   Totals = COUNT(*)
FROM    [dbo].[NewsSourcesMatch]
GROUP BY [Country]
)
SELECT  [Country]
    ,   [source_title] 
    ,   [source_title_count] =  COUNT([source_title])
    ,   [source_title_pct]   =  COUNT([source_title])/t.Totals

FROM [dbo].[NewsSourcesMatch] A
    INNER JOIN
    T t
    ON A.country = t.Country

GROUP   BY A.[Country], [source_title]

And similarly for lang

share|improve this answer
    
Oh I appreciate your response, but not quite there...I would like the following: USA 5 5/1000 –  vbNewbie Nov 3 '10 at 18:10
    
@vbNewbie, does the 1000 stand for total for USA or for the world? –  Noel Abrahams Nov 3 '10 at 18:15
    
country is invalid in the select list because it is not contained in either an aggregate function or the GROUP BY clause. –  vbNewbie Nov 3 '10 at 18:17
    
I was missing a Group By... try it now. –  Noel Abrahams Nov 3 '10 at 18:22
    
Ambiguous column name 'country'. Msg 209, Level 16, State 1, Line 9 –  vbNewbie Nov 3 '10 at 18:30
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