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We have a table with places and their latitudes and longitudes.

We are trying to create a function in SQL Server 2008 to list places within next 25 kilometers using a specific latitude and longitude as centre point.

I was wandering if this is a good way to start and test our function and getting current distance between a centre point (current location) and a target location (@latitude/@longitude):

ALTER FUNCTION [dbo].[GetDistanceFromLocation]
(   
    @myCurrentLatitude float,
    @myCurrentLongitude float,
    @latitude float,
    @longitude float
)
RETURNS int
AS
BEGIN
    DECLARE @radiusOfTheEarth int 
    SET @radiusOfTheEarth = 6371--km

    DECLARE @distance int
    SELECT @distance = ( @radiusOfTheEarth 
        * acos( cos( radians(@myCurrentLatitude) ) 
        * cos( radians( @latitude ) ) 
        * cos( radians( @longitude ) - radians(@myCurrentLongitude) ) + sin( radians(@myCurrentLatitude) ) 
        * sin( radians( @latitude ) ) ) )

    RETURN @distance

END

Is it correct or we are missing something?

share|improve this question
up vote 10 down vote accepted

It looks like you are using the great-circle distance formula, which is probably accurate enough for you, although you'll have to be the judge of that.

If you want to check the results of your formula, you can use the geography data type:

declare @geo1 geography = geography::Point(@lat1, @long1, 4326),
        @geo2 geography = geography::Point(@lat2, @long2, 4326)

select @geo1.STDistance(@geo2)

and since you are doing a proximity search, you may want to investigate the geography data type further.

share|improve this answer
    
What is 4326? I tried to see MSDN but doesn't have any information about it. – Akash Kava Sep 23 '13 at 14:03
    
4326 is the Spatial Reference ID for the World Geodetic reference system. For more information see technet.microsoft.com/en-us/library/bb933811.aspx en.wikipedia.org/wiki/SRID and en.wikipedia.org/wiki/WGS84 – Jeff Ogata Sep 24 '13 at 0:22

Would this be valid?

CREATE FUNCTION [dbo].[GetDistanceFromLocation]
(   
    @CurrentLatitude float,
    @CurrentLongitude float,
    @latitude float,
    @longitude float
)
RETURNS int
AS
BEGIN
    DECLARE @geo1 geography = geography::Point(@lat1, @long1, 4268), 
            @geo2 geography = geography::Point(@lat2, @long2, 4268)

    DECLARE @distance int
    SELECT @distance = @geo1.STDistance(@geo2) 

    RETURN @distance

END

Thanks!

share|improve this answer
    
Welcome to Stack Overflow! This is really a comment, not an answer. With a bit more rep, you will be able to post comments. I'm flagging this post for deletion. – Rohit Gupta Aug 17 '15 at 23:31
    
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. – Blackwood Aug 18 '15 at 0:47

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