WebSQL/SQLite calculating distance using latitude and longitude? - sqlite

I have a PhoneGap app and have shifted everything to a local DB, I now need to calculate the users location form the points in the DB.
Does anyone have any pointed how to do this, I was using the Google API but now focusing on this working offline so have to query the DB.
Thanks.


You want to calculate the distance from longtitude and lattitude (offline), right??
Look at this link
var lat1 = //start latitude
var lon1 = //start longitude
var lat2 = //end latitude
var lon2 = //end longitude
var R = 6371; // now in km (change for get miles)
var dLat = (lat2-lat1) * Math.PI / 180;
var dLon = (lon2-lon1) * Math.PI / 180;
var a = Math.sin(dLat/2) * Math.sin(dLat/2) + Math.cos(lat1 * Math.PI / 180 ) * Math.cos(lat2 * Math.PI / 180 ) * Math.sin(dLon/2) * Math.sin(dLon/2);
var c = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1-a));
var d = R * c;
if (d>1)
return Math.round(d);//+"km";
else if (d<=1)
return Math.round(d*1000)+"m";
return d;

Related

Google Maps Javascript API - places.AutocompleteService - getPlacePredictions returns wrong distance_meters, when certain criteria are met

Google Maps Javascript API version 3.44.5
I call getPlacePredictions to get predictions from some user input, 'origin' biased, and 'address' type. The prediction distance_meters is wrong under certain circumstances: When the input doesn't correspond to an existent street number, but is closed enough so the engine is able to estimate location. Proof of wrong distance: Take the returned place_id, use Geocoder to obtain geometry.location, finally calc distance between coords. In this example we get 547 vs 2481 meters.
Also, please conside that Villate 250 returns 547 meters (wrong), the same distance of Villate 280, and the same of Villate 350... But Villate 456 returns 2390 meters (correct)... And then again Villate 480 returns 547 meters (wrong) and so on...
Bug ? Am i misinterpreting something ? Thanks
const OriginLat = -34.52211;
const OriginLon = -58.499669;
const exampleInput = "villate 250";
var service = new google.maps.places.AutocompleteService();
var geocoder = new google.maps.Geocoder();
service.getPlacePredictions({ input: exampleInput
, type: ["address"]
, componentRestrictions: { country: 'ar' }
, origin: new google.maps.LatLng( OriginLat, OriginLon )
, radius: 1
}, displaySuggestions);
const displaySuggestions = function(predictions, status) {
// Values
console.log(predictions[0].place_id);
// EkBDYXJsb3MgVmlsbGF0ZSAyNTAsIE9saXZvcywgUHJvdmluY2lhIGRlIEJ1ZW5vcyBBaXJlcywgQXJnZW50aW5hIlESTwo0CjIJc8WRg0SxvJURdeB0wGKPz_caHgsQ7sHuoQEaFAoSCb-oQzIdsbyVEYvJh6S0OZzZDBD6ASoUChIJz6lHjCixvJURF-aUHiYnCg4
console.log(predictions[0].distance_meters);
// 547m
};
geocoder.geocode({placeId: place_id}, geocoderResult);
const geocoderResult = function(results, status) {
let resultPos = results[0].geometry.location;
console.log(resultPos);
// -34.51032,-58.476673
// Distance Recalc
distance_meters = fncLocalDistance(resultPos.lat(), resultPos.lng(), OriginLat, OriginLon);
// 2481m
};
// Distance between coords
function fncLocalDistance(lat1, lon1, lat2, lon2) {
if ((lat1 == lat2) && (lon1 == lon2)) {return 0}
let radlat1 = Math.PI * lat1/180;
let radlat2 = Math.PI * lat2/180;
let theta = lon1-lon2;
let radtheta = Math.PI * theta/180;
let dist = Math.sin(radlat1) * Math.sin(radlat2) + Math.cos(radlat1) * Math.cos(radlat2) * Math.cos(radtheta);
if (dist > 1) {dist = 1}
dist = Math.acos(dist);
dist = dist * 180/Math.PI;
dist = dist * 60 * 1.1515;
dist = dist * 1.609344 * 1000;
return dist;
}

Lat/Lng to Web Mercator Projection Issues

I've got some simple code in a Qt application which converts from a latitude/longitude coordinate to a web mercator x/y position:
// Radius of the Earth in metres
const double EARTH_RADIUS = 20037508.34;
// Convert from a LL to a QPointF
QPointF GeoPoint::toMercator() {
double x = this->longitude() * EARTH_RADIUS / 180.0;
double y = log(tan((90.0 + this->latitude()) * PI / 360.0)) / (PI / 180.0);
y = y * EARTH_RADIUS / 180.0;
return QPointF(x, y);
}
// Convert from a QPointF to a LL
GeoPoint GeoPoint::fromMercator(const QPointF &pt) {
double lon = (pt.x() / EARTH_RADIUS) * 180.0;
double lat = (pt.y() / EARTH_RADIUS) * 180.0;
lat = 180.0 / PI * (2 * atan(exp(lat * PI / 180.0)) - PI / 2.0);
return GeoPoint(lat, lon);
}
I'm wanting to get the geographic position of a number of objects which are in metres distance away from a geographic origin, however either my lack of understanding or source code are not correct.
Consider the following:
GeoPoint pt1(54.253230, -3.006460);
QPointF m1 = pt1.toMercator();
qDebug() << m1;
// QPointF(-334678,7.21826e+06)
// Now I want to add a distance onto the mercator coordinates, i.e. 50 metres
m1.rx() += 50.0;
qDebug() << m1;
// QPointF(-334628,7.21826e+06)
// Take this back to a LL
GeoPoint pt1a = GeoPoint::fromMercator(m1);
qDebug() << pt1a.toString();
// "54.25323°, -3.00601°"
If I plot the two LL coordinates into Google Earth, they are not 50m apart as expected, they are about 29.3m apart.
I'm perplexed!

Calculate min distance between a "line" and one "point"

I have a "linestring" (with init and end points) and a single "point" (two coordinates).
And I have implemented the following ActionSctipt code to use "haversine formula" to calculate the distance between two points (each point has x & y coordinates); this function can return the "distance" in "kms", "meters", "feets" or "miles":
private function distanceBetweenCoordinates(lat1:Number, lon1:Number, lat2:Number, lon2:Number, units:String = "miles"):Number {
var R:int = RADIUS_OF_EARTH_IN_MILES;
if (units == "km") {
R = RADIUS_OF_EARTH_IN_KM;
}
if (units == "meters") {
R = RADIUS_OF_EARTH_IN_M;
}
if (units == "feet") {
R = RADIUS_OF_EARTH_IN_FEET;
}
var dLat:Number = (lat2 - lat1) * Math.PI / 180;
var dLon:Number = (lon2 - lon1) * Math.PI / 180;
var lat1inRadians:Number = lat1 * Math.PI / 180;
var lat2inRadians:Number = lat2 * Math.PI / 180;
var a:Number = Math.sin(dLat / 2) * Math.sin(dLat / 2) + Math.sin(dLon / 2) * Math.sin(dLon / 2) * Math.cos(lat1inRadians) * Math.cos(lat2inRadians);
var c:Number = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1 - a));
var d:Number = R * c;
return d;
}
This code is functioning well. But I need to improving this code to allow calculate the minimum distance between a "single point" and one "linestring" (with 2 points).
How can I do?
I thought this solution:
* Divide the "linesting" for each point (Init and end)... and for each of these calculate the distance to the "single point"... and after I getting both "distances" return the minimum distance.
This solution is not the better, this is explained in the following image:
"d1" and "d2" distances are invalid... because only "d0" is the valid distance.
Please! help me!!! How can I improve the haversine formula to calculate the distance between a line and a single point in kilometres?
Thanks!!!!

In your case d0 distance is a height of triangle. It's Hb=2*A/b where A- Area & b-length of the base side (your linestring).
If given 3 points you can calculate the the distances between them (sides a, b, c of triangle). It will allow you to calculate triangle Area: A=sqrt(p*(p-a)*(p-b)*(p-c)) where p is half perimeter: p=(a+b+c)/2. So, now u have all variables u need to calculate the distance Hb (your "d0").

Convert map latitude and longitude into X and Y coordinates in flash

I want to latitude/longitude into X,Y coordinates in flash, So i tried these methods by googling.
Please can someone tell me some other way to calculate. because its not showing the expected places
public function getPoint(lat, lon) {
// First method
/*stationX = (180+lon) * (mapwidth / 360);
stationY = (90-lat) * (mapheight / 180);*/
// Second method
lat = (lat * -1) + 90;
lon+=180;
stationX = p.TnMap.x+Math.round(lon * (mapwidth / 360))+ 50;
stationY = p.TnMap.y+Math.round(lat * (mapheight / 180));
// Thirdmethod
/*stationX = radius_of_world * Math.cos(lon) * Math.cos(lat);
stationY = radius_of_world * Math.sin(lon) * Math.cos(lat);
stationZ = radius_of_world * Math.sin(lat);
stationX = stationX * 150 / (150 + stationZ);
stationY = stationY * 150 / (150 + stationZ);*/
}

Calculate distance between 2 GPS coordinates

How do I calculate distance between two GPS coordinates (using latitude and longitude)?

Calculate the distance between two coordinates by latitude and longitude, including a Javascript implementation.
West and South locations are negative.
Remember minutes and seconds are out of 60 so S31 30' is -31.50 degrees.
Don't forget to convert degrees to radians. Many languages have this function. Or its a simple calculation: radians = degrees * PI / 180.
function degreesToRadians(degrees) {
return degrees * Math.PI / 180;
}
function distanceInKmBetweenEarthCoordinates(lat1, lon1, lat2, lon2) {
var earthRadiusKm = 6371;
var dLat = degreesToRadians(lat2-lat1);
var dLon = degreesToRadians(lon2-lon1);
lat1 = degreesToRadians(lat1);
lat2 = degreesToRadians(lat2);
var a = Math.sin(dLat/2) * Math.sin(dLat/2) +
Math.sin(dLon/2) * Math.sin(dLon/2) * Math.cos(lat1) * Math.cos(lat2);
var c = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1-a));
return earthRadiusKm * c;
}
Here are some examples of usage:
distanceInKmBetweenEarthCoordinates(0,0,0,0) // Distance between same
// points should be 0
0
distanceInKmBetweenEarthCoordinates(51.5, 0, 38.8, -77.1) // From London
// to Arlington
5918.185064088764

Look for haversine with Google; here is my solution:
#include <math.h>
#include "haversine.h"
#define d2r (M_PI / 180.0)
//calculate haversine distance for linear distance
double haversine_km(double lat1, double long1, double lat2, double long2)
{
double dlong = (long2 - long1) * d2r;
double dlat = (lat2 - lat1) * d2r;
double a = pow(sin(dlat/2.0), 2) + cos(lat1*d2r) * cos(lat2*d2r) * pow(sin(dlong/2.0), 2);
double c = 2 * atan2(sqrt(a), sqrt(1-a));
double d = 6367 * c;
return d;
}
double haversine_mi(double lat1, double long1, double lat2, double long2)
{
double dlong = (long2 - long1) * d2r;
double dlat = (lat2 - lat1) * d2r;
double a = pow(sin(dlat/2.0), 2) + cos(lat1*d2r) * cos(lat2*d2r) * pow(sin(dlong/2.0), 2);
double c = 2 * atan2(sqrt(a), sqrt(1-a));
double d = 3956 * c;
return d;
}

C# Version of Haversine
double _eQuatorialEarthRadius = 6378.1370D;
double _d2r = (Math.PI / 180D);
private int HaversineInM(double lat1, double long1, double lat2, double long2)
{
return (int)(1000D * HaversineInKM(lat1, long1, lat2, long2));
}
private double HaversineInKM(double lat1, double long1, double lat2, double long2)
{
double dlong = (long2 - long1) * _d2r;
double dlat = (lat2 - lat1) * _d2r;
double a = Math.Pow(Math.Sin(dlat / 2D), 2D) + Math.Cos(lat1 * _d2r) * Math.Cos(lat2 * _d2r) * Math.Pow(Math.Sin(dlong / 2D), 2D);
double c = 2D * Math.Atan2(Math.Sqrt(a), Math.Sqrt(1D - a));
double d = _eQuatorialEarthRadius * c;
return d;
}
Here's a .NET Fiddle of this, so you can test it out with your own Lat/Longs.

Java Version of Haversine Algorithm based on Roman Makarov`s reply to this thread
public class HaversineAlgorithm {
static final double _eQuatorialEarthRadius = 6378.1370D;
static final double _d2r = (Math.PI / 180D);
public static int HaversineInM(double lat1, double long1, double lat2, double long2) {
return (int) (1000D * HaversineInKM(lat1, long1, lat2, long2));
}
public static double HaversineInKM(double lat1, double long1, double lat2, double long2) {
double dlong = (long2 - long1) * _d2r;
double dlat = (lat2 - lat1) * _d2r;
double a = Math.pow(Math.sin(dlat / 2D), 2D) + Math.cos(lat1 * _d2r) * Math.cos(lat2 * _d2r)
* Math.pow(Math.sin(dlong / 2D), 2D);
double c = 2D * Math.atan2(Math.sqrt(a), Math.sqrt(1D - a));
double d = _eQuatorialEarthRadius * c;
return d;
}
}

This is very easy to do with geography type in SQL Server 2008.
SELECT geography::Point(lat1, lon1, 4326).STDistance(geography::Point(lat2, lon2, 4326))
-- computes distance in meters using eliptical model, accurate to the mm
4326 is SRID for WGS84 elipsoidal Earth model

Here's a Haversine function in Python that I use:
from math import pi,sqrt,sin,cos,atan2
def haversine(pos1, pos2):
lat1 = float(pos1['lat'])
long1 = float(pos1['long'])
lat2 = float(pos2['lat'])
long2 = float(pos2['long'])
degree_to_rad = float(pi / 180.0)
d_lat = (lat2 - lat1) * degree_to_rad
d_long = (long2 - long1) * degree_to_rad
a = pow(sin(d_lat / 2), 2) + cos(lat1 * degree_to_rad) * cos(lat2 * degree_to_rad) * pow(sin(d_long / 2), 2)
c = 2 * atan2(sqrt(a), sqrt(1 - a))
km = 6367 * c
mi = 3956 * c
return {"km":km, "miles":mi}

I needed to calculate a lot of distances between the points for my project, so I went ahead and tried to optimize the code, I have found here. On average in different browsers my new implementation runs 2 times faster than the most upvoted answer.
function distance(lat1, lon1, lat2, lon2) {
var p = 0.017453292519943295; // Math.PI / 180
var c = Math.cos;
var a = 0.5 - c((lat2 - lat1) * p)/2 +
c(lat1 * p) * c(lat2 * p) *
(1 - c((lon2 - lon1) * p))/2;
return 12742 * Math.asin(Math.sqrt(a)); // 2 * R; R = 6371 km
}
You can play with my jsPerf and see the results here.
Recently I needed to do the same in python, so here is a python implementation:
from math import cos, asin, sqrt
def distance(lat1, lon1, lat2, lon2):
p = 0.017453292519943295
a = 0.5 - cos((lat2 - lat1) * p)/2 + cos(lat1 * p) * cos(lat2 * p) * (1 - cos((lon2 - lon1) * p)) / 2
return 12742 * asin(sqrt(a))
And for the sake of completeness: Haversine on wiki.

It depends on how accurate you need it to be. If you need pinpoint accuracy, it is best to look at an algorithm which uses an ellipsoid, rather than a sphere, such as Vincenty's algorithm, which is accurate to the mm.

Here it is in C# (lat and long in radians):
double CalculateGreatCircleDistance(double lat1, double long1, double lat2, double long2, double radius)
{
return radius * Math.Acos(
Math.Sin(lat1) * Math.Sin(lat2)
+ Math.Cos(lat1) * Math.Cos(lat2) * Math.Cos(long2 - long1));
}
If your lat and long are in degrees then divide by 180/PI to convert to radians.

PHP version:
(Remove all deg2rad() if your coordinates are already in radians.)
$R = 6371; // km
$dLat = deg2rad($lat2-$lat1);
$dLon = deg2rad($lon2-$lon1);
$lat1 = deg2rad($lat1);
$lat2 = deg2rad($lat2);
$a = sin($dLat/2) * sin($dLat/2) +
sin($dLon/2) * sin($dLon/2) * cos($lat1) * cos($lat2);
$c = 2 * atan2(sqrt($a), sqrt(1-$a));
$d = $R * $c;

A T-SQL function, that I use to select records by distance for a center
Create Function [dbo].[DistanceInMiles]
( #fromLatitude float ,
#fromLongitude float ,
#toLatitude float,
#toLongitude float
)
returns float
AS
BEGIN
declare #distance float
select #distance = cast((3963 * ACOS(round(COS(RADIANS(90-#fromLatitude))*COS(RADIANS(90-#toLatitude))+
SIN(RADIANS(90-#fromLatitude))*SIN(RADIANS(90-#toLatitude))*COS(RADIANS(#fromLongitude-#toLongitude)),15))
)as float)
return round(#distance,1)
END

I. Regarding "Breadcrumbs" method
Earth radius is different on different Lat. This must be taken into consideration in Haversine algorithm.
Consider Bearing change, which turns straight lines to arches (which are longer)
Taking Speed change into account will turn arches to spirals (which are longer or shorter than arches)
Altitude change will turn flat spirals to 3D spirals (which are longer again). This is very important for hilly areas.
Below see the function in C which takes #1 and #2 into account:
double calcDistanceByHaversine(double rLat1, double rLon1, double rHeading1,
double rLat2, double rLon2, double rHeading2){
double rDLatRad = 0.0;
double rDLonRad = 0.0;
double rLat1Rad = 0.0;
double rLat2Rad = 0.0;
double a = 0.0;
double c = 0.0;
double rResult = 0.0;
double rEarthRadius = 0.0;
double rDHeading = 0.0;
double rDHeadingRad = 0.0;
if ((rLat1 < -90.0) || (rLat1 > 90.0) || (rLat2 < -90.0) || (rLat2 > 90.0)
|| (rLon1 < -180.0) || (rLon1 > 180.0) || (rLon2 < -180.0)
|| (rLon2 > 180.0)) {
return -1;
};
rDLatRad = (rLat2 - rLat1) * DEGREE_TO_RADIANS;
rDLonRad = (rLon2 - rLon1) * DEGREE_TO_RADIANS;
rLat1Rad = rLat1 * DEGREE_TO_RADIANS;
rLat2Rad = rLat2 * DEGREE_TO_RADIANS;
a = sin(rDLatRad / 2) * sin(rDLatRad / 2) + sin(rDLonRad / 2) * sin(
rDLonRad / 2) * cos(rLat1Rad) * cos(rLat2Rad);
if (a == 0.0) {
return 0.0;
}
c = 2 * atan2(sqrt(a), sqrt(1 - a));
rEarthRadius = 6378.1370 - (21.3847 * 90.0 / ((fabs(rLat1) + fabs(rLat2))
/ 2.0));
rResult = rEarthRadius * c;
// Chord to Arc Correction based on Heading changes. Important for routes with many turns and U-turns
if ((rHeading1 >= 0.0) && (rHeading1 < 360.0) && (rHeading2 >= 0.0)
&& (rHeading2 < 360.0)) {
rDHeading = fabs(rHeading1 - rHeading2);
if (rDHeading > 180.0) {
rDHeading -= 180.0;
}
rDHeadingRad = rDHeading * DEGREE_TO_RADIANS;
if (rDHeading > 5.0) {
rResult = rResult * (rDHeadingRad / (2.0 * sin(rDHeadingRad / 2)));
} else {
rResult = rResult / cos(rDHeadingRad);
}
}
return rResult;
}
II. There is an easier way which gives pretty good results.
By Average Speed.
Trip_distance = Trip_average_speed * Trip_time
Since GPS Speed is detected by Doppler effect and is not directly related to [Lon,Lat] it can be at least considered as secondary (backup or correction) if not as main distance calculation method.

If you need something more accurate then have a look at this.
Vincenty's formulae are two related iterative methods used in geodesy
to calculate the distance between two points on the surface of a
spheroid, developed by Thaddeus Vincenty (1975a) They are based on the
assumption that the figure of the Earth is an oblate spheroid, and
hence are more accurate than methods such as great-circle distance
which assume a spherical Earth.
The first (direct) method computes the location of a point which is a
given distance and azimuth (direction) from another point. The second
(inverse) method computes the geographical distance and azimuth
between two given points. They have been widely used in geodesy
because they are accurate to within 0.5 mm (0.020″) on the Earth
ellipsoid.

If you're using .NET don't reivent the wheel. See System.Device.Location. Credit to fnx in the comments in another answer.
using System.Device.Location;
double lat1 = 45.421527862548828D;
double long1 = -75.697189331054688D;
double lat2 = 53.64135D;
double long2 = -113.59273D;
GeoCoordinate geo1 = new GeoCoordinate(lat1, long1);
GeoCoordinate geo2 = new GeoCoordinate(lat2, long2);
double distance = geo1.GetDistanceTo(geo2);

here is the Swift implementation from the answer
func degreesToRadians(degrees: Double) -> Double {
return degrees * Double.pi / 180
}
func distanceInKmBetweenEarthCoordinates(lat1: Double, lon1: Double, lat2: Double, lon2: Double) -> Double {
let earthRadiusKm: Double = 6371
let dLat = degreesToRadians(degrees: lat2 - lat1)
let dLon = degreesToRadians(degrees: lon2 - lon1)
let lat1 = degreesToRadians(degrees: lat1)
let lat2 = degreesToRadians(degrees: lat2)
let a = sin(dLat/2) * sin(dLat/2) +
sin(dLon/2) * sin(dLon/2) * cos(lat1) * cos(lat2)
let c = 2 * atan2(sqrt(a), sqrt(1 - a))
return earthRadiusKm * c
}

This is version from "Henry Vilinskiy" adapted for MySQL and Kilometers:
CREATE FUNCTION `CalculateDistanceInKm`(
fromLatitude float,
fromLongitude float,
toLatitude float,
toLongitude float
) RETURNS float
BEGIN
declare distance float;
select
6367 * ACOS(
round(
COS(RADIANS(90-fromLatitude)) *
COS(RADIANS(90-toLatitude)) +
SIN(RADIANS(90-fromLatitude)) *
SIN(RADIANS(90-toLatitude)) *
COS(RADIANS(fromLongitude-toLongitude))
,15)
)
into distance;
return round(distance,3);
END;

This Lua code is adapted from stuff found on Wikipedia and in Robert Lipe's GPSbabel tool:
local EARTH_RAD = 6378137.0
-- earth's radius in meters (official geoid datum, not 20,000km / pi)
local radmiles = EARTH_RAD*100.0/2.54/12.0/5280.0;
-- earth's radius in miles
local multipliers = {
radians = 1, miles = radmiles, mi = radmiles, feet = radmiles * 5280,
meters = EARTH_RAD, m = EARTH_RAD, km = EARTH_RAD / 1000,
degrees = 360 / (2 * math.pi), min = 60 * 360 / (2 * math.pi)
}
function gcdist(pt1, pt2, units) -- return distance in radians or given units
--- this formula works best for points close together or antipodal
--- rounding error strikes when distance is one-quarter Earth's circumference
--- (ref: wikipedia Great-circle distance)
if not pt1.radians then pt1 = rad(pt1) end
if not pt2.radians then pt2 = rad(pt2) end
local sdlat = sin((pt1.lat - pt2.lat) / 2.0);
local sdlon = sin((pt1.lon - pt2.lon) / 2.0);
local res = sqrt(sdlat * sdlat + cos(pt1.lat) * cos(pt2.lat) * sdlon * sdlon);
res = res > 1 and 1 or res < -1 and -1 or res
res = 2 * asin(res);
if units then return res * assert(multipliers[units])
else return res
end
end

private double deg2rad(double deg)
{
return (deg * Math.PI / 180.0);
}
private double rad2deg(double rad)
{
return (rad / Math.PI * 180.0);
}
private double GetDistance(double lat1, double lon1, double lat2, double lon2)
{
//code for Distance in Kilo Meter
double theta = lon1 - lon2;
double dist = Math.Sin(deg2rad(lat1)) * Math.Sin(deg2rad(lat2)) + Math.Cos(deg2rad(lat1)) * Math.Cos(deg2rad(lat2)) * Math.Cos(deg2rad(theta));
dist = Math.Abs(Math.Round(rad2deg(Math.Acos(dist)) * 60 * 1.1515 * 1.609344 * 1000, 0));
return (dist);
}
private double GetDirection(double lat1, double lon1, double lat2, double lon2)
{
//code for Direction in Degrees
double dlat = deg2rad(lat1) - deg2rad(lat2);
double dlon = deg2rad(lon1) - deg2rad(lon2);
double y = Math.Sin(dlon) * Math.Cos(lat2);
double x = Math.Cos(deg2rad(lat1)) * Math.Sin(deg2rad(lat2)) - Math.Sin(deg2rad(lat1)) * Math.Cos(deg2rad(lat2)) * Math.Cos(dlon);
double direct = Math.Round(rad2deg(Math.Atan2(y, x)), 0);
if (direct < 0)
direct = direct + 360;
return (direct);
}
private double GetSpeed(double lat1, double lon1, double lat2, double lon2, DateTime CurTime, DateTime PrevTime)
{
//code for speed in Kilo Meter/Hour
TimeSpan TimeDifference = CurTime.Subtract(PrevTime);
double TimeDifferenceInSeconds = Math.Round(TimeDifference.TotalSeconds, 0);
double theta = lon1 - lon2;
double dist = Math.Sin(deg2rad(lat1)) * Math.Sin(deg2rad(lat2)) + Math.Cos(deg2rad(lat1)) * Math.Cos(deg2rad(lat2)) * Math.Cos(deg2rad(theta));
dist = rad2deg(Math.Acos(dist)) * 60 * 1.1515 * 1.609344;
double Speed = Math.Abs(Math.Round((dist / Math.Abs(TimeDifferenceInSeconds)) * 60 * 60, 0));
return (Speed);
}
private double GetDuration(DateTime CurTime, DateTime PrevTime)
{
//code for speed in Kilo Meter/Hour
TimeSpan TimeDifference = CurTime.Subtract(PrevTime);
double TimeDifferenceInSeconds = Math.Abs(Math.Round(TimeDifference.TotalSeconds, 0));
return (TimeDifferenceInSeconds);
}

i took the top answer and used it in a Scala program
import java.lang.Math.{atan2, cos, sin, sqrt}
def latLonDistance(lat1: Double, lon1: Double)(lat2: Double, lon2: Double): Double = {
val earthRadiusKm = 6371
val dLat = (lat2 - lat1).toRadians
val dLon = (lon2 - lon1).toRadians
val latRad1 = lat1.toRadians
val latRad2 = lat2.toRadians
val a = sin(dLat / 2) * sin(dLat / 2) + sin(dLon / 2) * sin(dLon / 2) * cos(latRad1) * cos(latRad2)
val c = 2 * atan2(sqrt(a), sqrt(1 - a))
earthRadiusKm * c
}
i curried the function in order to be able to easily produce functions that have one of the two locations fixed and require only a pair of lat/lon to produce distance.

Here's a Kotlin variation:
import kotlin.math.*
class HaversineAlgorithm {
companion object {
private const val MEAN_EARTH_RADIUS = 6371.008
private const val D2R = Math.PI / 180.0
}
private fun haversineInKm(lat1: Double, lon1: Double, lat2: Double, lon2: Double): Double {
val lonDiff = (lon2 - lon1) * D2R
val latDiff = (lat2 - lat1) * D2R
val latSin = sin(latDiff / 2.0)
val lonSin = sin(lonDiff / 2.0)
val a = latSin * latSin + (cos(lat1 * D2R) * cos(lat2 * D2R) * lonSin * lonSin)
val c = 2.0 * atan2(sqrt(a), sqrt(1.0 - a))
return MEAN_EARTH_RADIUS * c
}
}

you can find a implementation of this (with some good explanation) in F# on fssnip
here are the important parts:
let GreatCircleDistance&lt[&ltMeasure&gt] 'u&gt (R : float&lt'u&gt) (p1 : Location) (p2 : Location) =
let degToRad (x : float&ltdeg&gt) = System.Math.PI * x / 180.0&ltdeg/rad&gt
let sq x = x * x
// take the sin of the half and square the result
let sinSqHf (a : float&ltrad&gt) = (System.Math.Sin &gt&gt sq) (a / 2.0&ltrad&gt)
let cos (a : float&ltdeg&gt) = System.Math.Cos (degToRad a / 1.0&ltrad&gt)
let dLat = (p2.Latitude - p1.Latitude) |&gt degToRad
let dLon = (p2.Longitude - p1.Longitude) |&gt degToRad
let a = sinSqHf dLat + cos p1.Latitude * cos p2.Latitude * sinSqHf dLon
let c = 2.0 * System.Math.Atan2(System.Math.Sqrt(a), System.Math.Sqrt(1.0-a))
R * c

I needed to implement this in PowerShell, hope it can help someone else.
Some notes about this method
Don't split any of the lines or the calculation will be wrong
To calculate in KM remove the * 1000 in the calculation of $distance
Change $earthsRadius = 3963.19059 and remove * 1000 in the calculation of $distance the to calulate the distance in miles
I'm using Haversine, as other posts have pointed out Vincenty's formulae is much more accurate
Function MetresDistanceBetweenTwoGPSCoordinates($latitude1, $longitude1, $latitude2, $longitude2)
{
$Rad = ([math]::PI / 180);
$earthsRadius = 6378.1370 # Earth's Radius in KM
$dLat = ($latitude2 - $latitude1) * $Rad
$dLon = ($longitude2 - $longitude1) * $Rad
$latitude1 = $latitude1 * $Rad
$latitude2 = $latitude2 * $Rad
$a = [math]::Sin($dLat / 2) * [math]::Sin($dLat / 2) + [math]::Sin($dLon / 2) * [math]::Sin($dLon / 2) * [math]::Cos($latitude1) * [math]::Cos($latitude2)
$c = 2 * [math]::ATan2([math]::Sqrt($a), [math]::Sqrt(1-$a))
$distance = [math]::Round($earthsRadius * $c * 1000, 0) #Multiple by 1000 to get metres
Return $distance
}

Scala version
def deg2rad(deg: Double) = deg * Math.PI / 180.0
def rad2deg(rad: Double) = rad / Math.PI * 180.0
def getDistanceMeters(lat1: Double, lon1: Double, lat2: Double, lon2: Double) = {
val theta = lon1 - lon2
val dist = Math.sin(deg2rad(lat1)) * Math.sin(deg2rad(lat2)) + Math.cos(deg2rad(lat1)) *
Math.cos(deg2rad(lat2)) * Math.cos(deg2rad(theta))
Math.abs(
Math.round(
rad2deg(Math.acos(dist)) * 60 * 1.1515 * 1.609344 * 1000)
)
}

Here's my implementation in Elixir
defmodule Geo do
#earth_radius_km 6371
#earth_radius_sm 3958.748
#earth_radius_nm 3440.065
#feet_per_sm 5280
#d2r :math.pi / 180
def deg_to_rad(deg), do: deg * #d2r
def great_circle_distance(p1, p2, :km), do: haversine(p1, p2) * #earth_radius_km
def great_circle_distance(p1, p2, :sm), do: haversine(p1, p2) * #earth_radius_sm
def great_circle_distance(p1, p2, :nm), do: haversine(p1, p2) * #earth_radius_nm
def great_circle_distance(p1, p2, :m), do: great_circle_distance(p1, p2, :km) * 1000
def great_circle_distance(p1, p2, :ft), do: great_circle_distance(p1, p2, :sm) * #feet_per_sm
#doc """
Calculate the [Haversine](https://en.wikipedia.org/wiki/Haversine_formula)
distance between two coordinates. Result is in radians. This result can be
multiplied by the sphere's radius in any unit to get the distance in that unit.
For example, multiple the result of this function by the Earth's radius in
kilometres and you get the distance between the two given points in kilometres.
"""
def haversine({lat1, lon1}, {lat2, lon2}) do
dlat = deg_to_rad(lat2 - lat1)
dlon = deg_to_rad(lon2 - lon1)
radlat1 = deg_to_rad(lat1)
radlat2 = deg_to_rad(lat2)
a = :math.pow(:math.sin(dlat / 2), 2) +
:math.pow(:math.sin(dlon / 2), 2) *
:math.cos(radlat1) * :math.cos(radlat2)
2 * :math.atan2(:math.sqrt(a), :math.sqrt(1 - a))
end
end

Dart Version
Haversine Algorithm.
import 'dart:math';
class GeoUtils {
static double _degreesToRadians(degrees) {
return degrees * pi / 180;
}
static double distanceInKmBetweenEarthCoordinates(lat1, lon1, lat2, lon2) {
var earthRadiusKm = 6371;
var dLat = _degreesToRadians(lat2-lat1);
var dLon = _degreesToRadians(lon2-lon1);
lat1 = _degreesToRadians(lat1);
lat2 = _degreesToRadians(lat2);
var a = sin(dLat/2) * sin(dLat/2) +
sin(dLon/2) * sin(dLon/2) * cos(lat1) * cos(lat2);
var c = 2 * atan2(sqrt(a), sqrt(1-a));
return earthRadiusKm * c;
}
}

In Python, you can use the geopy library to compute the geodesic distance using the WGS84 ellipsoid:
from geopy.distance import geodesic
newport_ri = (41.49008, -71.312796)
cleveland_oh = (41.499498, -81.695391)
print(geodesic(newport_ri, cleveland_oh).km)

TypeScript Version
export const degreeToRadian = (degree: number) => {
return degree * Math.PI / 180;
}
export const distanceBetweenEarthCoordinatesInKm = (lat1: number, lon1: number, lat2: number, lon2: number) => {
const earthRadiusInKm = 6371;
const dLat = degreeToRadian(lat2 - lat1);
const dLon = degreeToRadian(lon2 - lon1);
lat1 = degreeToRadian(lat1);
lat2 = degreeToRadian(lat2);
const a = Math.sin(dLat / 2) * Math.sin(dLat / 2) + Math.sin(dLon / 2) * Math.sin(dLon / 2) * Math.cos(lat1) * Math.cos(lat2);
const c = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1 - a));
return earthRadiusInKm * c;
}

I think a version of the algorithm in R is still missing:
gpsdistance<-function(lat1,lon1,lat2,lon2){
# internal function to change deg to rad
degreesToRadians<- function (degrees) {
return (degrees * pi / 180)
}
R<-6371e3 #radius of Earth in meters
phi1<-degreesToRadians(lat1) # latitude 1
phi2<-degreesToRadians(lat2) # latitude 2
lambda1<-degreesToRadians(lon1) # longitude 1
lambda2<-degreesToRadians(lon2) # longitude 2
delta_phi<-phi1-phi2 # latitude-distance
delta_lambda<-lambda1-lambda2 # longitude-distance
a<-sin(delta_phi/2)*sin(delta_phi/2)+
cos(phi1)*cos(phi2)*sin(delta_lambda/2)*
sin(delta_lambda/2)
cc<-2*atan2(sqrt(a),sqrt(1-a))
distance<- R * cc
return(distance) # in meters
}

For java
public static double degreesToRadians(double degrees) {
return degrees * Math.PI / 180;
}
public static double distanceInKmBetweenEarthCoordinates(Location location1, Location location2) {
double earthRadiusKm = 6371;
double dLat = degreesToRadians(location2.getLatitude()-location1.getLatitude());
double dLon = degreesToRadians(location2.getLongitude()-location1.getLongitude());
double lat1 = degreesToRadians(location1.getLatitude());
double lat2 = degreesToRadians(location2.getLatitude());
double a = Math.sin(dLat/2) * Math.sin(dLat/2) +
Math.sin(dLon/2) * Math.sin(dLon/2) * Math.cos(lat1) * Math.cos(lat2);
double c = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1-a));
return earthRadiusKm * c;
}

For anyone searching for a Delphi/Pascal version:
function GreatCircleDistance(const Lat1, Long1, Lat2, Long2: Double): Double;
var
Lat1Rad, Long1Rad, Lat2Rad, Long2Rad: Double;
const
EARTH_RADIUS_KM = 6378;
begin
Lat1Rad := DegToRad(Lat1);
Long1Rad := DegToRad(Long1);
Lat2Rad := DegToRad(Lat2);
Long2Rad := DegToRad(Long2);
Result := EARTH_RADIUS_KM * ArcCos(Cos(Lat1Rad) * Cos(Lat2Rad) * Cos(Long1Rad - Long2Rad) + Sin(Lat1Rad) * Sin(Lat2Rad));
end;
I take no credit for this code, I originally found it posted by Gary William on a public forum.

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