Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to find the distance between two points (for which I've latitudes & longitudes) using the technique described here at How do I calculate distance between two latitude longitude points?

The codes are as below avascript:

var R = 6371; // Radius of the earth in km
var dLat = (lat2-lat1).toRad();  // Javascript functions in radians
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; // Distance in km

But when I try to implement it, an error shows up saying Uncaught TypeError: Object 20 has no Method 'toRad'.

Do I need a special library or something to get .toRad() working? because it seems to be screwing up on the second line.

share|improve this question
    
Please see my answer with an optimized version of Haversine distance. On average it runs twice as fast your starting solution. –  Salvador Dali Feb 7 at 8:56

5 Answers 5

up vote 86 down vote accepted

You are missing a function declaration.

In this case toRad() must be defined first as:

/** Converts numeric degrees to radians */
if (typeof(Number.prototype.toRad) === "undefined") {
  Number.prototype.toRad = function() {
    return this * Math.PI / 180;
  }
}

according to the code segment all at the bottom of the page

share|improve this answer

Or in my case this didn't work. It may because i needed to call toRad() inside jquery. Im not 100% sure, so i did this:

function CalcDistanceBetween(lat1, lon1, lat2, lon2) {
    //Radius of the earth in:  1.609344 miles,  6371 km  | var R = (6371 / 1.609344);
    var R = 3958.7558657440545; // Radius of earth in Miles 
    var dLat = toRad(lat2-lat1);
    var dLon = toRad(lon2-lon1); 
    var a = Math.sin(dLat/2) * Math.sin(dLat/2) +
            Math.cos(toRad(lat1)) * Math.cos(toRad(lat2)) * 
            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;
}

function toRad(Value) {
    /** Converts numeric degrees to radians */
    return Value * Math.PI / 180;
}
share|improve this answer

Why not simplify the above equation and same a few computations?

Math.sin(dLat/2) * Math.sin(dLat/2) = (1.0-Math.cos(dLat))/2.0

Math.sin(dLon/2) * Math.sin(dLon/2) = (1.0-Math.cos(dLon))/2.0

share|improve this answer

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 almost 3 times faster then mentioned here.

function distance(lat1, lon1, lat2, lon2) {
  var R = 6371; // Radius of the earth in km
  var dLat = (lat2 - lat1) * Math.PI / 180;  // deg2rad below
  var dLon = (lon2 - lon1) * Math.PI / 180;
  var a = 
     0.5 - Math.cos(dLat)/2 + 
     Math.cos(lat1 * Math.PI / 180) * Math.cos(lat2 * Math.PI / 180) * 
     (1 - Math.cos(dLon))/2;

  return R * 2 * Math.asin(Math.sqrt(a));
}

You can play with my jsPerf (which was vastly improved thanks to Bart) and see the results here.

share|improve this answer
1  
Just added a new revision to your jsPerf test which implements an even faster version. You're welcome :-) –  Bart Feb 24 at 14:36
2  
And another revision which is even faster than the previous one posted, using local references to Math functions and a hardcoded constant for Math.PI / 180. Performance gain on my machine: another 20%. –  Bart Mar 7 at 11:34
    
@Bart this is really cool. Almost 3 times faster. –  Salvador Dali Mar 7 at 11:54

I changed a couple of things:

if (!Number.prototype.toRad || (typeof(Number.prototype.toRad) === undefined)) {

and, I noticed there was no checking for the arguments. You should make sure the args are defined AND probably do a parseInt(arg, 10) / parseFloat on there.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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