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I am using geolocation to get the users current location and monitor it using the watchPosition method. However, is there a way of calculating the distance between the users starting position and current position? Below is my code:

var x = document.getElementById("info");

function getLocation() {
    if(navigator.geolocation) {
        navigator.geolocation.watchPosition(showPosition, showError, {
            enableHighAccuracy: true,
            maximumAge: 60000,
            timeout: 27000
        })
    } else {
        x.innerHTML = "Geolocation is not supported by this browser.";
    }
}
var flightPathCoordinates = [];

function showPosition(position) {
    x.innerHTML = "Latitude: " + position.coords.latitude + "<br>Longitude: " + position.coords.longitude + "<br>Accuracy: " + position.coords.accuracy + "<br>Altitude: " + position.coords.altitude + "<br>Altitude Accuracy: " + position.coords.altitudeAccuracy + "<br>Heading: " + position.coords.heading + "<br>Speed: " + position.coords.speed + "<br>Speed (mph): " + position.coords.speed * 2.2369 + "<br>Speed (km): " + position.coords.speed * 3.6 + "<br>Timestamp: " + new Date(position.timestamp).toLocaleString() + "<br>Distance Travelled (km): " + calculateDistance(position.coords.latitude, position.coords.longitude, position.coords.latitude, position.coords.longitude);
    // Distance Calculator

    function calculateDistance(lat1, lon1, lat2, lon2) {
        if(typeof (Number.prototype.toRad) === "undefined") {
            Number.prototype.toRad = function () {
                return this * Math.PI / 180;
            }
        }
        var R = 6371; // km
        var dLat = (lat2 - lat1).toRad();
        var dLon = (lon2 - lon1).toRad();
        var a = Math.sin(dLat / 2) * Math.sin(dLat / 2) + Math.cos(lat1.toRad()) * Math.cos(lat2.toRad()) * 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;
    }
    Number.prototype.toRad = function () {
        return this * Math.PI / 180;
    }
    lat = position.coords.latitude;
    lon = position.coords.longitude;
    latlon = new google.maps.LatLng(lat, lon)
    mapholder = document.getElementById('mapholder')
    var myOptions = {
        center: latlon,
        zoom: 16,
        mapTypeId: google.maps.MapTypeId.ROADMAP,
        mapTypeControl: true,
        navigationControlOptions: {
            style: google.maps.NavigationControlStyle.SMALL
        }
    }
    var map = new google.maps.Map(document.getElementById("mapholder"), myOptions);

Any help would be very much appreciated as I am quite new to this.

Thanks!

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2 Answers 2

up vote 1 down vote accepted

This has been adapted from the Google Maps API, and reworked to be independent of the library.

Example - calculate the distance from the center of New York City to the center of Philadelphia.

JS

function distanceFrom(points) {
    var lat1 = points.lat1;
    var radianLat1 = lat1 * (Math.PI / 180);
    var lng1 = points.lng1;
    var radianLng1 = lng1 * (Math.PI / 180);
    var lat2 = points.lat2;
    var radianLat2 = lat2 * (Math.PI / 180);
    var lng2 = points.lng2;
    var radianLng2 = lng2 * (Math.PI / 180);
    var earth_radius = 3959; // or 6371 for kilometers
    var diffLat = (radianLat1 - radianLat2);
    var diffLng = (radianLng1 - radianLng2);
    var sinLat = Math.sin(diffLat / 2);
    var sinLng = Math.sin(diffLng / 2);
    var a = Math.pow(sinLat, 2.0) + Math.cos(radianLat1) * Math.cos(radianLat2) * Math.pow(sinLng, 2.0);
    var distance = earth_radius * 2 * Math.asin(Math.min(1, Math.sqrt(a)));
    return distance.toFixed(3);
}

var distance = distanceFrom({
    // NYC
    'lat1': 40.713955826286046,
    'lng1': -74.00665283203125,
    // Philly
    'lat2': 39.952335,
    'lng2': -75.163789
});

The result is 80.524 miles or 129.583 kilometers.

share|improve this answer
1  
Thanks for your quick response Couzzi! I had a look at the links you provided. They work as intended but they don't use geolocation. I'm confused as to how I could manipulate it to suit my code above. –  Liam O'Byrne Mar 20 '13 at 18:21
    
Glad I could help. To use my example, you just need to pass the distanceFrom() function an object that contains the coordinates of point A, and the coordinates of point B. In your case, store the first set of coordinates (your start position), then, any following coordinates will be your second set. Each time a new second set of changes and is compared to your first set of coordinates (via the distanceFrom() function), the distance returned will reflect that. –  couzzi Mar 20 '13 at 18:46
1  
So what you're saying is I would need to obtain the users location using the getCurrentPosition() first. Then, use watchPosition() to monitor the users movement? –  Liam O'Byrne Mar 20 '13 at 20:00
    
Exactly. You could, on the first run of watchPosition(), store the result as the "initial" position, and then carry on with updating the new position. But using both methods would work perfectly. –  couzzi Mar 20 '13 at 20:03
    
Thank you so much for your time. I will your mark feedback comment as the answer, so don't worry! I just have one more question. How could I store the initial position results of watchPosition()? –  Liam O'Byrne Mar 20 '13 at 20:22

you can use Haversine formula

rad = function(x) {return x*Math.PI/180;}

distHaversine = function(p1, p2) { // Points are Geolocation.coords objects
  var R = 6371; // earth's mean radius in km
  var dLat  = rad(p2.latitude - p1.latitude);
  var dLong = rad(p2.longitude - p1.longitude);

  var a = Math.sin(dLat/2) * Math.sin(dLat/2) +
          Math.cos(rad(p1.lat())) * Math.cos(rad(p2.lat())) * Math.sin(dLong/2) * Math.sin(dLong/2);
  var c = 2 * Math.atan2(Math.sqrt(a), Math.sqrt(1-a));
  var d = R * c;

  return d.toFixed(3);
}

Two tips

  1. typeof is not a function. Use it like this: typeof something
  2. Do not put polyfills in listeners. you are repeating the polyfill action in every time listener fires.
share|improve this answer
    
Thanks for your quick response Mohsen! I am not using the getCurrentPosition() method - instead, I am using the watchPosition(). Do you think I would need to use both methods? –  Liam O'Byrne Mar 20 '13 at 18:18
    
@LiamO'Byrne Yes you can use both methods. –  Foreever Dec 16 '13 at 12:41

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