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If you have a circle with center (center_x, center_y) and radius radius, how do you test if a given point with coordinates (x, y) is inside the circle?

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5  
This question is really language agnostic, I am using the same formula in java, So re-tagging. –  mataug Jun 18 '12 at 11:02

7 Answers 7

In general, x and y must satisfy (x - center_x)^2 + (y - center_y)^2 < radius^2.

Please note that points that satisfy the above equation with < replaced by == are considered the points on the circle, and the points that satisfy the above equation with < replaced by > are considered the outside the circle.

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1  
It may help some less math minded folks to see the square root operation used to measure distance compared against the radius. I realize that's not optimal, but as your answer is formatted more like an equation than code perhaps it makes more sense? Just a suggestion. –  William Morrison Mar 5 '13 at 18:13
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This is the most comprehensible explanation provided in just a simple sentence and a immediately useable equation. Well done. –  thgc Oct 16 '13 at 13:09

You can use Pythagoras to measure the distance between your point and the centre and see if it's lower than the radius:

def in_circle(center_x, center_y, radius, x, y):
    dist = math.sqrt((center_x - x) ** 2 + (center_y - y) ** 2)
    return dist <= radius

EDIT (hat tip to Paul)

In practice, squaring is often much cheaper than taking the square root and since we're only interested in an ordering, we can of course forego taking the square root:

def in_circle(center_x, center_y, radius, x, y):
    square_dist = (center_x - x) ** 2 + (center_y - y) ** 2
    return square_dist <= radius ** 2

Also, Jason noted that <= should be replaced by < and depending on usage this may actually make sense even though I believe that it's not true in the strict mathematical sense. I stand corrected.

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Replace dist <= radius by dist < radius to test for the point being inside the circle. –  Jason Jan 26 '09 at 20:17
11  
sqrt is expensive. Avoid it if possible - compare the x^2+y^y to r^2. –  Paul Tomblin Jan 26 '09 at 20:20
2  
The formal mathematical definition of the interior of a circle is that which I gave in my post. From Wikipedia: In general, the interior of something refers to the space or part inside of it, excluding any kind of wall or boundary around its outside. en.wikipedia.org/wiki/Interior_(topology) –  Jason Jan 26 '09 at 20:29
1  
Proof by Wikipedia. ;-) –  Konrad Rudolph Jan 26 '09 at 20:59
1  
In pascal, delphi and FPC, both power, and sqrt is to expensive, and there's no power-operator EG: ** or ^. The fastest way to do it when you just need x^2 or x^3 is to do it "manually": x*x. –  JHolta Mar 21 '13 at 3:34

Mathematically, Pythagoras is probably a simple method as many have already mentioned.

(x-center_x)^2 + (y - center_y)^2 < radius^2

Computationally, there are quicker ways. Define:

dx = abs(x-center_x)
dy = abs(y-center_y)
R = radius

If a point is more likely to be outside this circle then imagine a square drawn around it such that it's sides are tangents to this circle:

if dx>R then 
    return false.
if dy>R then 
    return false.

Now imagine a square diamond drawn inside this circle such that it's vertices touch this circle:

if dx + dy <= R then 
    return true.

Now we have covered most of our space and only a small area of this circle remains in between our square and diamond to be tested. Here we revert to Pythagoras as above.

if dx^2 + dy^2 <= R^2 then 
    return true
else 
    return false.

If a point is more likely to be inside this circle then reverse order of first 3 steps:

if dx + dy <= R then 
    return true.
if dx > R then 
    return false.
if dy > R 
    then return false.
if dx^2 + dy^2 <= R^2 then 
    return true
else
    return false.

Alternate methods imagine a square inside this circle instead of a diamond but this requires slightly more tests and calculations with no computational advantage (inner square and diamonds have identical areas):

k = R/sqrt(2)
if dx <= k and dy <= k then 
    return true.
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3  
This answer is excellent. I'd never realized some of the optimizations you suggest. Well done. –  William Morrison Jul 21 '13 at 9:26
    
I'm curious to know if you have profiled these optimizations? My gut feeling is that multiple conditionals would be slower than some math and one conditional, but I could be wrong. –  yoyo Jun 11 at 17:04
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@yoyo, I have preformed no profiling - this question is about a method for any programming language. If someone thinks this might improve performance in their application then they should, as you suggest, demonstrate it is faster in normal scenarios. –  philcolbourn Jun 12 at 6:21
boolean isInRectangle(double centerX, double centerY, double radius, 
    double x, double y)
{
        return x >= centerX - radius && x <= centerX + radius && 
            y >= centerY - radius && y <= centerY + radius;
}    

//test if coordinate (x, y) is within a radius from coordinate (center_x, center_y)
public boolean isPointInCircle(double centerX, double centerY, 
    double radius, double x, double y)
{
    if(isInRectangle(centerX, centerY, radius, x, y))
    {
        double dx = center_x - x;
        double dy = center_y - y;
        dx *= dx;
        dy *= dy;
        double distanceSquared = dx + dy;
        double radiusSquared = radius * radius;
        return distanceSquared <= radiusSquared;
    }
    return false;
}

This is more efficient, and readable. It avoids the costly square root operation. I also added a check to determine if the point is within the bounding rectangle of the circle.

The rectangle check is unnecessary except with many points or many circles. If most points are inside circles, the bounding rectangle check will actually make things slower!

As always, be sure to consider your use case.

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3  
perfect, congratulations –  ademar111190 Jan 31 '12 at 22:53
1  
this worked great. thanks –  domji84 Aug 30 '13 at 16:12

Calculate the Distance

D = Math.Sqrt(Math.Pow(center_x - x, 2) + Math.Pow(center_y - y, 2))
return D <= radius

that's in C#...convert for use in python...

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8  
You can avoid two expensive Sqrt calls by comparing D-squared to radius-squared. –  Paul Tomblin Jan 26 '09 at 20:18

You should check whether the distance from the center of the circle to the point is smaller than the radius, i.e.

if (x-center_x)**2 + (y-center_y)**2 <= radius**2:
    # inside circle
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As said above -- use Euclidean distance.

from math import hypot

def in_radius(c_x, c_y, r, x, y):
    return math.hypot(c_x-x, c_y-y) <= r
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