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I want to find a nearest location from following database table

Address                            Latitude                longitude 

Kathmandu 44600, Nepal              27.7                   85.33333330000005
Los, Antoniterstraße                37.09024               -95.71289100000001
Sydney NSW, Australia               49.7480755             8.111794700000019
goa india                           15.2993265             74.12399600000003

I have fetched this all data from Google Maps. Here I have to find nearest location from a place. Suppose I am at place Surkhet its latitude is 28.6 and longitude is 81.6, how can I find nearest place from the place Surkhet.

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  • have you looked at the related links on the left >>> some of them look on topic for you.
    – user557846
    Jun 20 '12 at 4:46
  • 1
    I believe you need to do something like Geospatial search. Please see this paper scribd.com/doc/2569355/Geo-Distance-Search-with-MySQL Jun 20 '12 at 4:47
  • 2
    @Dagon - I assume you mean the other left? Jun 20 '12 at 6:44
  • @Damien_The_Unbeliever um i live in the souther hemisphere, our left is your right :-)
    – user557846
    Jun 20 '12 at 19:56
  • A detail blog: goo.gl/oU7Krf Dec 18 '15 at 7:06
95

Finding locations nearby with MySQL

Here's the SQL statement that will find the closest 20 locations that are within a radius of 25 miles to the 37, -122 coordinate. It calculates the distance based on the latitude/longitude of that row and the target latitude/longitude, and then asks for only rows where the distance value is less than 25, orders the whole query by distance, and limits it to 20 results. To search by kilometers instead of miles, replace 3959 with 6371.

Table Structure :

id,name,address,lat,lng

NOTE - Here latitude = 37 & longitude = -122. So you just pass your own.

SELECT id, ( 3959 * acos( cos( radians(37) ) * cos( radians( lat ) ) * 
cos( radians( lng ) - radians(-122) ) + sin( radians(37) ) * 
sin( radians( lat ) ) ) ) AS distance FROM your_table_name HAVING
distance < 25 ORDER BY distance LIMIT 0 , 20;

You can find details here.

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  • 3
    Also go through this one. It explains everything in nice way. developers.google.com/maps/articles/phpsqlsearch
    – Scorpion
    Jun 20 '12 at 4:54
  • Thank you so much for query. I have to find nearest location from Surkhet which latitude is 28.6 and longitude is 81.6. How to include this point on this query.. Please suggest me..:) Jun 20 '12 at 5:06
  • See the note. I edited my answer. You need to pass your lat & lng in place of 37 & -122,
    – Scorpion
    Jun 20 '12 at 5:15
  • 2
    Does this work for you?? And also keep in mind that i have used 3959, it will search by miles. If you want to search by km change it to 6371.
    – Scorpion
    Jun 20 '12 at 5:41
  • SELECT address, lng, SQRT( POW(69.1 * (lat -21.0486), 2) + POW(69.1 * ( 76.5344 - lng) * COS(lat/ 57.3), 2)) AS distance FROM partner_locations HAVING distance < 25000 ORDER BY distance I found this query.. Its working properly.. But i m not sure about unit of distance.. is it kilometer or miles... can you suggest me please Jun 20 '12 at 7:16
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SELECT id, ( 3959 * acos( cos( radians(37) ) * cos( radians( lat ) ) * cos( radians( lng ) - radians(-122) ) + sin( radians(37) ) * sin( radians( lat ) ) ) ) AS distance FROM markers HAVING distance < 25 ORDER BY distance LIMIT 0 , 20;
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  • 1
    distance 25 here is in miles??
    – Sripaul
    Dec 2 '12 at 17:37
  • 11
    Yes. 3959 - Miles, 6371 - Kilometers Aug 6 '13 at 11:40
  • @Krishna Karki, will this return a lat and lon if I put it in function? Sep 7 '15 at 21:49
  • Distance from where? Feb 7 '16 at 21:44
  • can you please tell us if this work fine for thousand records. Thank
    – usama
    Aug 10 '17 at 20:15
3

To find the nearby location , you can use the Geocoder Class.Since you have the Geopoints(latitude and longitude), Reverse geocoding can be used. Reverse Geocoding is the process of transforming a (latitude, longitude) coordinate into a (partial) address. Check out this for more information.

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1
SELECT latitude, longitude, SQRT(
    POW(69.1 * (latitude - [startlat]), 2) +
    POW(69.1 * ([startlng] - longitude) * COS(latitude / 57.3), 2)) AS distance
FROM TableName HAVING distance < 25 ORDER BY distance;

where [starlat] and [startlng] is the position where to start measuring the distance and 25 is the distance in kms.

It is advised to make stored procedure to use the query because it would be checking a lots of rows to find the result.

0

The SQL have a problem. In table like:

`ubicacion` (
  `id_ubicacion` INT(10) NOT NULL AUTO_INCREMENT ,
  `latitud` DOUBLE NOT NULL ,
  `longitud` DOUBLE NOT NULL ,
  PRIMARY KEY (`id_ubicacion`) )

The id_ubicacion change when use:

SELECT  `id_ubicacion` , ( 3959 * ACOS( COS( RADIANS( 9.053933 ) ) * COS( RADIANS( latitud ) ) * COS( RADIANS( longitud ) - RADIANS( - 79.421215 ) ) + SIN( RADIANS( 9.053933 ) ) * SIN( RADIANS( latitud ) ) ) ) AS distance
FROM ubicacion
HAVING distance <25
ORDER BY distance
LIMIT 0 , 20
0
sesach : ( 3959 * acos( cos( radians('.$_REQUEST['latitude'].') ) * cos( radians( latitude ) ) * cos( radians( longitude ) - radians('.$_REQUEST['longitude'].') ) + sin( radians('.$_REQUEST['latitude'].') ) * sin( radians( latitude ) ) ) ) <='.$_REQUEST['mile'];
0

When the method should perform it is nicer to first filter on latitude and longitude, and then calculate the squared distance approximative. For Nordic countries, it will be about 0.3 percent off within 1000 km's.

So instead of calculatinG the distance as:

dist_Sphere = r_earth * acos ( sin (lat1) * sin (lat2) + cos(lat1)*cos(lat2)*cos(lon 2 - lon 1)

one can calculate the approximate value (assume that lat = lat 1 is close to lat 2) as

const cLat2 = cos lat ^ 2
const r_earth2 = r_earth ^ 2
dist_App ^2 = r_earth2 * ((lat 2 - lat 1) ^2 + clat2 *(lon 2 - lon 1) ^2)

Order by Dist_App 2, and then simply take the square root off the result.

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