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So I'm trying to display lists of places within a range of the given lat/lng. I have no problem with this:

Places within one mile (list of places...)

Using something like

SELECT * FROM places WHERE lat < $latmax AND lat > $latmin AND lng < $lngmax AND lng > $lngmin

But then I want to list places within two miles, BUT not within one mile -- that is, I don't want to repeat the results from the first query.

Here's one version of what I've tried:

$milesperdegree = 0.868976242 / 60.0 * 1.2;

// 1 mile -- this works
$degrees = $milesperdegree * 1;
$latmin = $lat - $degrees;
$latmax = $lat + $degrees;
$lngmin = $lng - $degrees;
$lngmax = $lng + $degrees;

$query = "SELECT * FROM places WHERE lat < $latmax AND lat > $latmin AND lng < $lngmax AND lng > $lngmin";

// 2 miles -- this doesn't work
$degrees_2 = $milesperdegree * 2;
$latmin_2 = $lat - $degrees_2;
$latmax_2 = $lat + $degrees_2;
$lngmin_2 = $lat - $degrees_2;
$lngmax_2 = $lat + $degrees_2;

$query = "SELECT * FROM places WHERE ";
$query .= "lat BETWEEN $latmax AND $latmax_2 AND lng BETWEEN $lngmax AND $lngmax_2 OR ";
$query .= "lat BETWEEN $latmin AND $latmin_2 AND lng BETWEEN $lngmin AND $lngmin_2 OR ";
$query .= "lat BETWEEN $latmax AND $latmax_2 AND lng BETWEEN $lngmin AND $lngmin_2 OR ";
$query .= "lat BETWEEN $latmin AND $latmin_2 AND lng BETWEEN $lngmax AND $lngmax_2";

That's not doing it. I'm guessing it's just some logic I can't wrap my head around on Sunday afternoon, but I'm probably doing something else wrong too. Any input is greatly appreciated.

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Do you realize that this script just makes a box around the point (instead of a circle)? Also, $milesperdegree is a function (mathematically speaking) of latitude. There's a nice script for this - although in JavaScript - link –  Czechnology Feb 27 '11 at 20:01
    
I did not realize the circle/square bit. And I guess the longitude variables would be $lng +/- x miles, rather than $milesperdegree? –  nickfindley Feb 27 '11 at 20:05
    
As Earth is not a perfect sphere, the length of a degree is not fixed. If your scripts operates just on a small area (like a city), you can work with an average for that area. Otherwise more math is needed for precision. See latitude and longitude in Wikipedia. –  Czechnology Feb 27 '11 at 20:14
    
As for the circle/square part - a simple application of the Pythagorean theorem would fix that. –  Czechnology Feb 27 '11 at 20:17
    
Btw, +1 for the BETWEEN ... AND, didn't know that one ;) –  Czechnology Feb 27 '11 at 20:18

3 Answers 3

up vote 4 down vote accepted

We implement it more or less like the code below (disclaimer: I snipped this out of a file and deleted the code that was irrelevant to the problem at hand. I didn't run this, but you should be able to get the idea.

$maxLat = $city->latitude + ($max_distance / 69); // 69 Miles/Degree
$minLat = $city->latitude - ($max_distance / 69);

$maxLon = $city->longitude + ($max_distance / (69.172 * cos($city->latitude * 0.0174533)));
$minLon = $city->longitude - ($max_distance / (69.172 * cos($city->latitude * 0.0174533)));

// Simplify terms to speed query
$originLatRadCos = cos($city->latitude * 0.0174533);
$originLatRadSin = sin($city->latitude * 0.0174533);
$originLonRad = $city->longitude * 0.0174533;

$city_distance_query = "
SELECT city_id, 
  3963 * acos(($originLatRadSin * sin( latitude * 0.0174533)) + 
  ($originLatRadCos * cos(latitude * 0.0174533) * cos((longitude * 0.0174533) -
  $originLonRad))) AS distanceFromOrigin
FROM cities
WHERE
 latitude < $maxLat AND latitude > $minLat AND longitude < $maxLon AND longitude > $minLon";

The rest of the query

SELECT cities.city_name, CityDistance.distanceFromOrigin,
FROM cities 
INNER JOIN ($city_distance_query) AS CityDistance ON CityDistance.city_id=cities.city_id
WHERE (distanceFromOrigin < $distance OR distanceFromOrigin IS NULL) 
share|improve this answer
    
Certainly wouldn't have guessed that. Thanks all. –  nickfindley Feb 27 '11 at 22:34
    
Thank you very much for the post. Saved me a lot! Very easily adapted and clear. –  Paul T. Rawkeen Jul 26 '12 at 19:15

I think you're missing some brackets and have the logical operators a bit mixed up. How about this.

$query  = "SELECT * FROM places WHERE ";
$query .= "((lat BETWEEN $latmin_2 AND $latmax_2) AND NOT (lat BETWEEN $latmin AND $latmax)) AND ";
$query .= "((lng BETWEEN $lngmin_2 AND $lngmax_2) AND NOT (lng BETWEEN $lngmin AND $lngmax)) AND ";

EDIT

To solve the circle/square problem:

$query  = "SELECT * FROM places WHERE ";
$query .= "(POW((lat - $lat) * $avgMilesPerLatDeg,2) + ".
           "POW((lng - $lng) * $avgMilesPerLngDeg,2) BETWEEN 1 AND 4)";
// the four at the end is 2 squared

I would suggest using this approach if your app is not large-scale (geographically speaking) and the averages produce acceptable results. Calculating the real distance takes longer to compute and the difference might not be that big. This is up to you and your application's goal.

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Getting there! But I have to admit I don't quite understand what's going on, I guess mathematically at least. What would that query be to get the places between two and three miles out? –  nickfindley Feb 27 '11 at 21:04
    
The three miles out would be the farthest I'd go in this app -- just being roughly in the neighborhood is good enough. Though I appreciate the knowledge being dropped for future use. –  nickfindley Feb 27 '11 at 21:05
    
@nickfindley, It's really a just a pythagorean a^2 + b^2 = c^2, in our case n <= (x-a)^2 + (y-b)^2 <= m. So for places between two and three miles you need ... BETWEEN POW(2,2) AND POW(3,2) which is equivalent to ... BETWEEN 4 AND 9 –  Czechnology Feb 27 '11 at 21:12

Here is what I think you need: Calculate distance in MySQL using lat/lng. This will give you a circle, and an ability to have exclusion you need.

Follow the steps described in a post, but instead of

HAVING `distance`<= 10

You will need to put

HAVING `distance` BETWEEN 1 AND 2

This will give you stuff within the range.

PS: If you have a database with large number of records - you will need to benchmark how would it perform, and do some optimization (if performance is not acceptable)

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