85

I have canvas drawing tab and want lineWidth to be based on distance between two last mousemove coordinate updates. I will make translation of distance to width myself, I just need to know how to get distance between those points (I already have coordinates of those pointes).

183

You can do it with pythagoras theorem

If you have two points (x1, y1) and (x2, y2) then you can calculate the difference in x and difference in y, lets call them a and b.

enter image description here

var a = x1 - x2;
var b = y1 - y2;

var c = Math.sqrt( a*a + b*b );

// c is the distance
  • 3
    +1 fancy and correct...Nice! – markE Jan 4 '14 at 4:54
  • 4
    you can shorten var c = Math.sqrt( aa + bb ); to var c = Math.hypot(a,b); – evgpisarchik Oct 12 '17 at 12:38
  • 2
    a^2 + b^2 = c^2 Hypotenus equation – Kad Sep 20 '18 at 3:02
138

Note that Math.hypot is part of the ES2015 standard. There's also a good polyfill on the MDN doc for this feature.

So getting the distance becomes as easy as Math.hypot(x2-x1, y2-y1).

  • 11
    this should be the accepted answer – vach Aug 25 '16 at 6:56
  • Very cool answer, works great! Thank you. – Andy Apr 20 '17 at 17:36
22

http://en.wikipedia.org/wiki/Euclidean_distance

If you have the coordinates, use the formula to calculate the distance:

var dist = Math.sqrt( Math.pow((x1-x2), 2) + Math.pow((y1-y2), 2) );

If your platform supports the ** operator, you can instead use that:

const dist = Math.sqrt((x1 - x2) ** 2 + (y1 - y2) ** 2);
1

The distance between two coordinates x and y! x1 and y1 is the first point/position, x2 and y2 is the second point/position!

function diff (num1, num2) {
  if (num1 > num2) {
    return (num1 - num2);
  } else {
    return (num2 - num1);
  }
};

function dist (x1, y1, x2, y2) {
  var deltaX = diff(x1, x2);
  var deltaY = diff(y1, y2);
  var dist = Math.sqrt(Math.pow(deltaX, 2) + Math.pow(deltaY, 2));
  return (dist);
};

  • You should use Math.abs instead of diff. – Moshe Simantov Nov 27 '17 at 8:50
  • You don't need to use diff as squaring a number will always result in a positive number. If x1 - y1 is negative, (x1 - y1) ^ 2 is positive still. – Redwolf Programs Dec 17 '18 at 1:32
0

i tend to use this calculation a lot in things i make, so i like to add it to the Math object:

Math.dist=function(x1,y1,x2,y2){ 
  if(!x2) x2=0; 
  if(!y2) y2=0;
  return Math.sqrt((x2-x1)*(x2-x1)+(y2-y1)*(y2-y1)); 
}
Math.dist(0,0, 3,4); //the output will be 5
Math.dist(1,1, 4,5); //the output will be 5
Math.dist(3,4); //the output will be 5

Update:

this approach is especially happy making when you end up in situations something akin to this (i often do):

varName.dist=Math.sqrt( ( (varName.paramX-varX)/2-cx )*( (varName.paramX-varX)/2-cx ) + ( (varName.paramY-varY)/2-cy )*( (varName.paramY-varY)/2-cy ) );

that horrid thing becomes the much more manageable:

varName.dist=Math.dist((varName.paramX-varX)/2, (varName.paramY-varY)/2, cx, cy);

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