99

If I have a latitude or longitude reading in standard NMEA format is there an easy way / formula to convert that reading to meters, which I can then implement in Java (J9)?

Edit: Ok seems what I want to do is not possible easily, however what I really want to do is:

Say I have a lat and long of a way point and a lat and long of a user is there an easy way to compare them to decide when to tell the user they are within a reasonably close distance of the way point? I realise reasonable is subject but is this easily do-able or still overly maths-y?

  • 2
    Do you mean to UTM? en.wikipedia.org/wiki/… – Adrian Archer Mar 12 '09 at 17:41
  • 1
    What do you mean by converting a lat/long to meters? meters from where? Are you looking for a way to compute the distance along the surface of the earth from one coordinate to another? – Baltimark Mar 12 '09 at 17:43
  • 2
    Define "waypoint". Define "reasonable". Is this really what you want to know: "how do you calculate the distance between two points given their latitude and longitude?" – Baltimark Mar 12 '09 at 18:06
  • 2
    I stumbled upon this question wanting to do SQL queries on latitude and longitude and found this great article with some Java code at the bottom. It might interest you as well. – Kristof Van Landschoot Mar 1 '12 at 11:20
  • 1
    possible duplicate of How do I calculate distance between two latitude-longitude points? – Teepeemm Apr 23 '15 at 19:20

15 Answers 15

126

Here is a javascript function:

function measure(lat1, lon1, lat2, lon2){  // generally used geo measurement function
    var R = 6378.137; // Radius of earth in KM
    var dLat = lat2 * Math.PI / 180 - lat1 * Math.PI / 180;
    var dLon = lon2 * Math.PI / 180 - 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;
    return d * 1000; // meters
}

Explanation: https://en.wikipedia.org/wiki/Haversine_formula

The haversine formula determines the great-circle distance between two points on a sphere given their longitudes and latitudes.

  • 2
    For those looking for a library to convert between wgs and utm: github.com/urbanetic/utm-converter – Aram Kocharyan Dec 20 '14 at 15:05
  • 2
    Would be really grateful if somebody could add in some explanatory comments on the above code. Thanks in advance! – Ravindranath Akila Sep 28 '16 at 3:47
  • Yh, comment the code please! – Daniel Barde Feb 1 '17 at 14:20
  • Found this which this comment seem to be an adoption of. The link also says its based on this article on distance calculation. So any unanswered questions should be found in the original link. :) – Joachim Mar 25 '17 at 18:19
27

For approximating short distances between two coordinates I used formulas from http://en.wikipedia.org/wiki/Lat-lon:

m_per_deg_lat = 111132.954 - 559.822 * cos( 2 * latMid ) + 1.175 * cos( 4 * latMid);
m_per_deg_lon = 111132.954 * cos ( latMid );

.

In the code below I've left the raw numbers to show their relation to the formula from wikipedia.

double latMid, m_per_deg_lat, m_per_deg_lon, deltaLat, deltaLon,dist_m;

latMid = (Lat1+Lat2 )/2.0;  // or just use Lat1 for slightly less accurate estimate


m_per_deg_lat = 111132.954 - 559.822 * cos( 2.0 * latMid ) + 1.175 * cos( 4.0 * latMid);
m_per_deg_lon = (3.14159265359/180 ) * 6367449 * cos ( latMid );

deltaLat = fabs(Lat1 - Lat2);
deltaLon = fabs(Lon1 - Lon2);

dist_m = sqrt (  pow( deltaLat * m_per_deg_lat,2) + pow( deltaLon * m_per_deg_lon , 2) );

The wikipedia entry states that the distance calcs are within 0.6m for 100km longitudinally and 1cm for 100km latitudinally but I have not verified this as anywhere near that accuracy is fine for my use.

  • 3
    Note that in 2017 the Wikipedia page has another (seems refined) formula. – Gorka Llona Feb 25 '17 at 22:29
  • 2
    Yes, the formula in Wikipedia is slightly different, but it seem that the other Wikipedia formula is based on the similar results from this great SO answer, where someone actually went through the calculations. – not2qubit Jan 26 '18 at 9:00
26

Given you're looking for a simple formula, this is probably the simplest way to do it, assuming that the Earth is a sphere of perimeter 40075 km.

Length in meters of 1° of latitude = always 111.32 km

Length in meters of 1° of longitude = 40075 km * cos( latitude ) / 360

  • How does the longitude equation work? with a latitude of 90 degrees you'd expect it to show near 111km; but instead it shows 0; similarly, values close to it are also near 0. – Reece Jun 14 '17 at 14:36
  • 2
    Latitude is 0° at the equator and 90° at the pole (and not the opposite). For equator the formula gives 40075 km * cos(0°) / 360 = 111 km. For pole the formula gives 40075 * cos(90°) / 360 = 0 km. – Ben Jun 15 '17 at 12:34
12

Latitudes and longitudes specify points, not distances, so your question is somewhat nonsensical. If you're asking about the shortest distance between two (lat, lon) points, see this Wikipedia article on great-circle distances.

  • 4
    He is talking about referential conversion so your answer is not to the point(no pun intended) – Paulo Neves Dec 7 '15 at 20:03
  • 1
    And for reference a guide of conversion for datum transformation of GPS positions. www.microem.ru/pages/u_blox/tech/dataconvert/GPS.G1-X-00006.pdf – Paulo Neves Dec 8 '15 at 16:47
  • He wants to know how many degree per metre so that he can find distance between 2 points. Read between the lines. – theAnonymous Dec 28 '17 at 2:58
7

There are many tools that will make this easy. See monjardin's answer for more details about what's involved.

However, doing this isn't necessarily difficult. It sounds like you're using Java, so I would recommend looking into something like GDAL. It provides java wrappers for their routines, and they have all the tools required to convert from Lat/Lon (geographic coordinates) to UTM (projected coordinate system) or some other reasonable map projection.

UTM is nice, because it's meters, so easy to work with. However, you will need to get the appropriate UTM zone for it to do a good job. There are some simple codes available via googling to find an appropriate zone for a lat/long pair.

7

The earth is an annoyingly irregular surface, so there is no simple formula to do this exactly. You have to live with an approximate model of the earth, and project your coordinates onto it. The model I typically see used for this is WGS 84. This is what GPS devices usually use to solve the exact same problem.

NOAA has some software you can download to help with this on their website.

5

Here is the R version of b-h-'s function, just in case:

measure <- function(lon1,lat1,lon2,lat2) {
    R <- 6378.137                                # radius of earth in Km
    dLat <- (lat2-lat1)*pi/180
    dLon <- (lon2-lon1)*pi/180
    a <- sin((dLat/2))^2 + cos(lat1*pi/180)*cos(lat2*pi/180)*(sin(dLon/2))^2
    c <- 2 * atan2(sqrt(a), sqrt(1-a))
    d <- R * c
    return (d * 1000)                            # distance in meters
}
2

One nautical mile (1852 meters) is defined as one arcminute of longitude at the equator. However, you need to define a map projection (see also UTM) in which you are working for the conversion to really make sense.

  • 1
    No, the nautical mile is defined by international standard (v en.wikipedia.org/wiki/Nautical_mile) to be 1852m. Its relationship to the measurement of an arc on the surface of a spheroid such as the Earth is now both historical and approximate. – High Performance Mark Aug 28 '13 at 14:51
2

There are quite a few ways to calculate this. All of them use aproximations of spherical trigonometry where the radius is the one of the earth.

try http://www.movable-type.co.uk/scripts/latlong.html for a bit of methods and code in different languages.

1
    'below is from
'http://www.zipcodeworld.com/samples/distance.vbnet.html
Public Function distance(ByVal lat1 As Double, ByVal lon1 As Double, _
                         ByVal lat2 As Double, ByVal lon2 As Double, _
                         Optional ByVal unit As Char = "M"c) As Double
    Dim theta As Double = lon1 - lon2
    Dim dist As Double = Math.Sin(deg2rad(lat1)) * Math.Sin(deg2rad(lat2)) + _
                            Math.Cos(deg2rad(lat1)) * Math.Cos(deg2rad(lat2)) * _
                            Math.Cos(deg2rad(theta))
    dist = Math.Acos(dist)
    dist = rad2deg(dist)
    dist = dist * 60 * 1.1515
    If unit = "K" Then
        dist = dist * 1.609344
    ElseIf unit = "N" Then
        dist = dist * 0.8684
    End If
    Return dist
End Function
Public Function Haversine(ByVal lat1 As Double, ByVal lon1 As Double, _
                         ByVal lat2 As Double, ByVal lon2 As Double, _
                         Optional ByVal unit As Char = "M"c) As Double
    Dim R As Double = 6371 'earth radius in km
    Dim dLat As Double
    Dim dLon As Double
    Dim a As Double
    Dim c As Double
    Dim d As Double
    dLat = deg2rad(lat2 - lat1)
    dLon = deg2rad((lon2 - lon1))
    a = Math.Sin(dLat / 2) * Math.Sin(dLat / 2) + Math.Cos(deg2rad(lat1)) * _
            Math.Cos(deg2rad(lat2)) * Math.Sin(dLon / 2) * Math.Sin(dLon / 2)
    c = 2 * Math.Atan2(Math.Sqrt(a), Math.Sqrt(1 - a))
    d = R * c
    Select Case unit.ToString.ToUpper
        Case "M"c
            d = d * 0.62137119
        Case "N"c
            d = d * 0.5399568
    End Select
    Return d
End Function
Private Function deg2rad(ByVal deg As Double) As Double
    Return (deg * Math.PI / 180.0)
End Function
Private Function rad2deg(ByVal rad As Double) As Double
    Return rad / Math.PI * 180.0
End Function
  • I see the link is full of broken. – Tshepang Mar 6 '13 at 9:38
1

To convert latitude and longitude in x and y representation you need to decide what type of map projection to use. As for me, Elliptical Mercator seems very well. Here you can find an implementation (in Java too).

0

If its sufficiently close you can get away with treating them as coordinates on a flat plane. This works on say, street or city level if perfect accuracy isnt required and all you need is a rough guess on the distance involved to compare with an arbitrary limit.

  • 3
    No, that does not work! The x distance in m is different for different values of latitude. At the equator you might get away with it, but the closer you get to the poles the extremer your ellipsoids will get. – RickyA Nov 29 '12 at 11:27
  • 3
    While your comment is reasonable, it doesn't answer the user's question about converting the lat/lng degree difference to meters. – JivanAmara Sep 19 '13 at 4:37
0

Based on average distance for degress in the Earth.

1° = 111km;

Converting this for radians and dividing for meters, take's a magic number for the RAD, in meters: 0.000008998719243599958;

then:

const RAD = 0.000008998719243599958;
Math.sqrt(Math.pow(lat1 - lat2, 2) + Math.pow(long1 - long2, 2)) / RAD;
  • 3
    finally, a straightforward answer :) – Ben Hutchison Nov 14 '13 at 6:24
  • what if latitude is -179 and the other is 179, the x distance should be 2 degrees instead of 358 – OMGPOP Mar 15 '14 at 13:19
  • 20
    this would work great if the earth was flat. – Brett Pennings Mar 15 '14 at 19:48
  • 5
    Do not use this answer (for some reason, it's upvoted). There is not a single scaling between longitude and distance; the Earth is not flat. – CPBL Apr 11 '15 at 23:36
  • 5
    Note that one degree of longitude is 111 km at the equator, but less for other latitudes. There's a simple approximative formula to find the length in km of 1° of longitude in function of latitude : 1° of longitude = 40000 km * cos (latitude) / 360 (and of course it gives 111 km for latitude = 90°). Also remark that 1° of longitude is almost always a different distance than 1° of latitude. – Ben Sep 16 '16 at 21:13
-1

If you want a simple solution then use the Haversine formula as outlined by the other comments. If you have an accuracy sensitive application keep in mind the Haversine formula does not guarantee an accuracy better then 0.5% as it is assuming the earth is a circle. To consider that Earth is a oblate spheroid consider using Vincenty's formulae. Additionally, I'm not sure what radius we should use with the Haversine formula: {Equator: 6,378.137 km, Polar: 6,356.752 km, Volumetric: 6,371.0088 km}.

-2

You need to convert the coordinates to radians to do the spherical geometry. Once converted, then you can calculate a distance between the two points. The distance then can be converted to any measure you want.

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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