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I have a database that contains both text and geography collumns. The text is a CSV of keywords and the geography is points on a map.

I want to query a particular geographic region for the top X number of recurring keywords and return them in order from most frequent to least frequent. I have no idea if this is even possible or where to start. Any pointers would be great!

I'm running SQL Server 2012.

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can you change the database schema? –  cha0site Jan 19 '12 at 16:12
    
yes, I have full control over the db –  joe_coolish Jan 19 '12 at 16:18
    
Do you have any control over the database server? Ditch it and use PostGIS - the free spatial extension to free RDBMS PostgreSQL. Then you have spatial data structures and operations. Its trivial. –  Spacedman Jan 19 '12 at 16:43
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1 Answer

up vote 1 down vote accepted

Yes, this is possible. SQL Server (2008 and higher) does have two spatial types, geometry and geography.

Your datamodel could contain two tables, one with geometry and one with the terms/keywords per region.

For example:

create table a(id int, geo geometry);
create table b(a_id int, term nvarchar(50));

-- geometry with id 1
insert into a values(1, geometry::STGeomFromText('polygon((0 0,0 4,4 4,4 0,0 0))', 0));

-- keywords for geometry with id 1
insert into b values(1, 'term 1');
insert into b values(1, 'term 2');
insert into b values(1, 'term 2'); -- twice this term, on purpose

-- geometry with id 2
insert into a values(2, geometry::STGeomFromText('polygon((10 0,10 4,14 4,14 0,10 0))', 0));

-- keywords for geometry with id 2
insert into b values(2, 'term 3');
insert into b values(2, 'term 4');
insert into b values(2, 'term 1'); -- shared between 1 and 2

And then you create a spatial query, for example looking like this:

select a.id,b.term,COUNT(1) as frequency from a 
join b on a.id=b.a_id
where a.geo.STIntersects(geometry::STGeomFromText('polygon((2 2,2 12,12 12,12 2,2  2))', 0)) = 1
group by a.id,b.term
order by frequency desc

This will result into:

1   'term 2'    2
2   'term 3'    1
2   'term 4'    1
1   'term 1'    1
2   'term 1'    1

Which is what was asked for.

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+1 I figure this out last night :) But this was almost exactly what I ended up with. Thanks –  joe_coolish Jan 20 '12 at 19:58
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