Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm having some problems with my radius search. I have a table with zip codes, place names and geographical coordinates (based on OpenGeoDB).

Here is my SQL-Command:

SELECT main.zc_zip,
(ACOS(
    SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
) * 6380) AS `distance`
FROM tx_sdfilmbase_geodb main
LEFT JOIN tx_sdfilmbase_geodb geo ON geo.zc_location_name LIKE '%frauenfeld%'
WHERE
(ACOS(
SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
    ) * 6380) < 20
    AND main.disabled=0
ORDER BY `distance` ASC

I get results for all locations around Frauenfeld within a radius of 20 kilometres. However, I don't get any result for locations named "frauenfeld" - i.e. I get all surrounding places but not the searched placed itself.

How do I have to change the SQL to also get the place itself? I tried different things, but always the same result...

Would be glad for some hints.

Greets Stefan

Edit to answer comments by ypercube and Matt Gibson:

All entries in the database table have disabled=0 at the moment.

Amongst many others, I get the following results (zip, distance):

  • 8552 3.7661608052471
  • 8500 4.184731709915
  • 8523 4.9298917004071
  • 9548 4.9771821340396

Zip codes for Frauenfeld: 8500, 8501, 8502 and 8503.

Missing entries in the result would be (zip, distance):

  • 8500 0
  • 8501 0
  • 8502 0
  • 8503 0

However, the data in the geo database is correct (zip, place, latitude, longitude):

  • 8503 Frauenfeld 47.557707 8.897367
  • 8502 Frauenfeld 47.557707 8.897367
  • 8501 Frauenfeld 47.557707 8.897367
  • 8500 Frauenfeld 47.557707 8.897367

Edit to reply to answer by kuru kuru pa:

Thanks for your reply!
The Answer looks like this now (zc_location_name, zc_zip, disabled, distance):

Frauenfeld 8500 0 NULL  
Frauenfeld 8503 0 NULL  
Frauenfeld 8502 0 NULL  
Frauenfeld 8501 0 NULL  
Gerlikon 8500 0 4.18473170991499  

Why is it NULL and not 0? Any guesses? :-) Btw: Each result was listed 4 times (I just posted each once).

share|improve this question
1  
Have you checked if the location with name LIKE '%frauenfeld%' has disabled=0 ? – ypercubeᵀᴹ Sep 15 '11 at 10:33
    
Can you give us an example of the rows you think your query should be finding? Also, is that the right SQL? Your question title says LEFT JOIN, but you don't appear to be using a LEFT JOIN in the query. – Matt Gibson Sep 15 '11 at 10:47

Run this query:

SELECT
main.zc_zip,
main.disabled,
(ACOS(
    SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
) * 6380) AS `distance`
FROM tx_sdfilmbase_geodb main
LEFT JOIN tx_sdfilmbase_geodb geo ON geo.zc_location_name LIKE '%frauenfeld%'
WHERE main.zc_zip in(8500, 8501, 8502, 8503)
ORDER BY `distance` ASC

And then evaluate the results of distance and disabled. Your value of your function or disabled probably isn't what you're expecting it to be.

EDIT (In response to null result for distance field)

SELECT
main.zc_zip,
main.disabled,
(ACOS(
    SIN(RADIANS(isnull(main.zc_lat,0))) * SIN(RADIANS(isnull(geo.zc_lat,0)))
    + COS(RADIANS(isnull(main.zc_lat,0))) * COS(RADIANS(isnull(geo.zc_lat,0)))
    * COS(RADIANS(isnull(main.zc_lon,0)) - RADIANS(isnull(geo.zc_lon,0)))
) * 6380) AS `distance`
FROM tx_sdfilmbase_geodb main
LEFT JOIN tx_sdfilmbase_geodb geo ON geo.zc_location_name LIKE '%frauenfeld%'
WHERE main.zc_zip in(8500, 8501, 8502, 8503)
ORDER BY `distance` ASC

OR

SELECT
main.zc_zip,
main.disabled,
isnull(
(ACOS(
    SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
)
,0) * 6380) AS `distance`
FROM tx_sdfilmbase_geodb main
LEFT JOIN tx_sdfilmbase_geodb geo ON geo.zc_location_name LIKE '%frauenfeld%'
WHERE main.zc_zip in(8500, 8501, 8502, 8503)
ORDER BY `distance` ASC

OR alternatively to using ISNULL()

modify your original WHERE to say 'WHERE distance < 20 OR distance is null'

share|improve this answer
    
Thanks for your replies and sorry for the chaos with the comments (I'm not yet used to this website ;-)). I edited my first post above to give you feedback. @Matt – Stefan Sep 15 '11 at 15:26
    
@Stefan -- Your NULL results on the distance column probably means that your math is trying to evaluate a null at some point. I modified my answer for a few things you can try... – Chains Sep 15 '11 at 15:37
    
@Stefan -- BTW -- I'm not good at this kind of math, so I gave 2 potential answers. Essentially, the ISNULL() function says 'if this thing I am evaluating is null, then output a ___', where "___" is whatever you specify. In my samples, I used a zero. – Chains Sep 15 '11 at 15:40
    
As I'm using MySQL I think ISNULL() should be IFNULL(). However, your first edit-code still delivers me NULL-results and the second code with the isnull over the whole trigonometric expression, SQL says that there's a syntax error. I checked the MySQL manual but couldn't see the error... For the last suggestion with "OR distance is null" it says "Unknown column 'distance' in 'where clause'". – Stefan Sep 15 '11 at 16:04
    
Ok, saw the problem. I corrected it isnull/ifnull has to be around the whole distance-specification and not just within the trigonometric expression. – Stefan Sep 15 '11 at 16:43

No need for LEFT JOIN and IS NULL checks.

I think changing the WHERE clause would suffice:

WHERE
    ( (ACOS(
          SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
          + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
          * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
      ) * 6380) < 20
      OR main.id = geo.id                          --- the PK of the table
    )
    AND main.disabled=0

The problem probably lies in the calculations producing something like ACOS(1.00000001) and yielding NULL when the main and the geo (lat,lon) are equal.

share|improve this answer
    
Thanks for your reply, problem is already solved, just couldn't post an answer (had to wait 6 hours...) – Stefan Sep 15 '11 at 18:28
    
Well, can you check what SELECT SIN(RADIANS(47.557707)) * SIN(RADIANS(47.557707)) +COS(RADIANS(47.557707)) * COS(RADIANS(47.557707)) *COS(RADIANS(8.897367) - RADIANS(8.897367)) gives? – ypercubeᵀᴹ Sep 15 '11 at 18:33
    
And SELECT ACOS( ... ) where ... is the above formula? – ypercubeᵀᴹ Sep 15 '11 at 18:34
    
SELECT ACOS( SIN(RADIANS(47.557707)) * SIN(RADIANS(47.557707)) +COS(RADIANS(47.557707)) * COS(RADIANS(47.557707)) *COS(RADIANS(8.897367) - RADIANS(8.897367))) is null. Sorry, I'm not sure if I get you - what exactly are you driving at? – Stefan Sep 16 '11 at 4:57
    
And how can you say "OR main.id = geo.id" if you're not doing any JOIN? – Stefan Sep 16 '11 at 4:58

If someone someday has the same/similar problem, below the final solution for my initial problem:

SELECT main.zc_zip,
IFNULL(
(ACOS(
    SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
) * 6380), 0) AS `distance`
FROM tx_sdfilmbase_geodb main
LEFT JOIN tx_sdfilmbase_geodb geo ON geo.zc_location_name LIKE '%frauenfeld%'
WHERE
IFNULL(
(ACOS(
SIN(RADIANS(main.zc_lat)) * SIN(RADIANS(geo.zc_lat))
    + COS(RADIANS(main.zc_lat)) * COS(RADIANS(geo.zc_lat))
    * COS(RADIANS(main.zc_lon) - RADIANS(geo.zc_lon))
    ) * 6380), 0) < 20
    AND main.disabled=0
ORDER BY `distance` ASC

REMEMBER: IFNULL is for MySQL. If you are using other versions of SQL, make sure, you use the right counterpart.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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