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To find the area of a circle inside a right angled triangle, we have the formula to find the radius of the right angled triangle, r = ( P + B – H ) / 2. Given the P, B and H are the perpendicular, base and hypotenuse respectively of a right angled triangle. where π = 22 / 7 or 3.14 and r is the radius of the circle.Calculating the radius
Its radius, the inradius (usually denoted by r) is given by r = K/s, where K is the area of the triangle and s is the semiperimeter (a+b+c)/2 (a, b and c being the sides).The two formulas that are useful for finding the radius of a circle are C=2*pi*r and A=pi*r^2. We use algebra skills in solving for our variable r. We know that the constant pi is always 3.14. Another word related to the radius is diameter, which is always twice the radius.
Contents
How do I find the radius of a triangle?
Calculating the radius
Its radius, the inradius (usually denoted by r) is given by r = K/s, where K is the area of the triangle and s is the semiperimeter (a+b+c)/2 (a, b and c being the sides).
What is the formula for radius?
The two formulas that are useful for finding the radius of a circle are C=2*pi*r and A=pi*r^2. We use algebra skills in solving for our variable r. We know that the constant pi is always 3.14. Another word related to the radius is diameter, which is always twice the radius.
What is a radius in a triangle?
The circumradius of a cyclic polygon is the radius of the circumscribed circle of that polygon. For a triangle, it is the measure of the radius of the circle that circumscribes the triangle. Since every triangle is cyclic, every triangle has a circumscribed circle, or a circumcircle.
Is the radius the hypotenuse?
The hypotenuse is the radius of the circle, and the other two sides are the x and y coordinates of the point P.
Does a triangle have a radius?
Every side in every triangle is of length r. This is because we have 6 congruent (“equal” in every way) equilateral triangles, and because two sides of every triangle is a radius.
How many radius does a triangle have?
There are either one, two, or three of these for any given triangle. The incircle radius is no greater than one-ninth the sum of the altitudes. The incenter lies in the medial triangle (whose vertices are the midpoints of the sides).
What is the area of triangle with radius?
Formula 2: Area of a triangle if its inradius, r is known
Area A = r × s, where r is the in radius and ‘s’ is the semi perimeter.
Area of Incircle of a Right Angled Triangle in C Program?
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Trigonometry/Circles and Triangles/The Incircle – Wikibooks, open books for an open world
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Calculating the radius[edit edit source]
Another formula for the radius[edit edit source]
The Equal Incircles Theorem[edit edit source]
Another circle[edit edit source]
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Find the radius of this circle with a right triangle embedded into it – YouTube
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how to find the radius of a right triangle
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Hypotenuse of right triangle inscribed in circle | Circles | Geometry | Khan Academy – YouTube
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How to find the radius of circle inscribed in a right angled triangle – Quora
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Area of Incircle of a Right Angled Triangle – GeeksforGeeks
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Radius of an inscribed circle in a right triangle
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Radius of an inscribed circle in a right triangle
First add the two smaller ses: 6 + 8 = 14 · Now subtract the longer se from the sum you got in step 1: 14 – 10 = 4. · Since here you need to find the diameter … … - Most searched keywords: Whether you are looking for
Radius of an inscribed circle in a right triangle
First add the two smaller ses: 6 + 8 = 14 · Now subtract the longer se from the sum you got in step 1: 14 – 10 = 4. · Since here you need to find the diameter … Geometry, incircle of a right triangle, radius of an inscribed circle in a right triangleIn this concept, you will learn to find the radius of an inscribed circle in a right triangle. - Table of Contents:
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Area of Incircle of a Right Angled Triangle in C Program?
Area of Incircle of a Right Angled Triangle in C Program?
To find the area of a circle inside a right angled triangle, we have the formula to find the radius of the right angled triangle, r = ( P + B – H ) / 2.
Given the P, B and H are the perpendicular, base and hypotenuse respectively of a right angled triangle.
Area of a circle is given by the formula,
Area = π*r2
where π = 22 / 7 or 3.14 and r is the radius of the circle.
Hence the area of the incircle will be given by the formula,
Area = π* ((P + B – H) / 2)2.
Example
#include #define PI 3.14159265 int main() { float area,P = 3, B = 4, H = 5; area=(P + B – H) * (P + B – H) * (PI / 4); printf(“Area = %f”, area); return 0; }
Output
Area = 3.141593
Trigonometry/Circles and Triangles/The Incircle
The incircle of a triangle is the unique circle that has the three sides of the triangle as tangents. It is the largest circle lying entirely within a triangle.
Its centre, the incentre of the triangle, is at the intersection of the bisectors of the three angles of the triangle. This can be explained as follows:
The bisector of ∠ A B C {\displaystyle \angle {ABC}} A B ¯ {\displaystyle {\overline {AB}}} B C ¯ {\displaystyle {\overline {BC}}}
The bisector of ∠ A C B {\displaystyle \angle {ACB}} B C ¯ {\displaystyle {\overline {BC}}} A C ¯ {\displaystyle {\overline {AC}}}
The point where those two lines intersect is both equidistant from A B ¯ {\displaystyle {\overline {AB}}} B C ¯ {\displaystyle {\overline {BC}}} B C ¯ {\displaystyle {\overline {BC}}} A C ¯ {\displaystyle {\overline {AC}}} A B ¯ {\displaystyle {\overline {AB}}} B C ¯ {\displaystyle {\overline {BC}}} A C ¯ {\displaystyle {\overline {AC}}} A B ¯ {\displaystyle {\overline {AB}}} A C ¯ {\displaystyle {\overline {AC}}} ∠ B A C {\displaystyle \angle {BAC}}
Where the three bisectors cross is equidistant from A B ¯ {\displaystyle {\overline {AB}}} B C ¯ {\displaystyle {\overline {BC}}} A C ¯ {\displaystyle {\overline {AC}}}
Calculating the radius [ edit | edit source ]
Its radius, the inradius (usually denoted by r) is given by r = K/s, where K is the area of the triangle and s is the semiperimeter (a+b+c)/2 (a, b and c being the sides). To prove this, note that the lines joining the angles to the incentre divide the triangle into three smaller triangles, with bases a, b and c respectively and each with height r. The total area of these three triangles, hence the area K of the original triangle, is ar/2 + br/2 + cr/2. Rearranging, the result follows.
Applying Heron’s theorem, r = ( s − a ) ( s − b ) ( s − c ) / s {\displaystyle r={\sqrt {(s-a)(s-b)(s-c)/s}}}
If the circumradius of the triangle is R, K R = a b c 4 {\displaystyle R={\frac {abc}{4}}} . Combining this with the formula for r, R r = a b c 4 s {\displaystyle Rr={\frac {abc}{4s}}} .
The distance of the incentre from A is 4Rsin(B⁄ 2 )sin(C⁄ 2 ), and similarly for the other vertices.
The square of the distance between the circumcentre and incentre is R(R-2r). It follows that R > 2r unless the two centres coincide (which only happens for an equilateral triangle).
Another formula for the radius [ edit | edit source ]
Let I be the incentre. Consider the triangle BIC. Let D be the point where the incircle touches BC; the angles IDB, IDC are right angles.
Angle IBD = B⁄ 2 and angle ICD = C⁄ 2 .
BD = r cot( B⁄ 2 ); CD = r cot( C⁄ 2 ); BD+CD = BC = a.
r ( cot ( B 2 ) + cot ( C 2 ) ) = a {\displaystyle r\left(\cot \left({\frac {B}{2}}\right)+\cot \left({\frac {C}{2}}\right)\right)=a}
r = a cot ( B 2 ) + cot ( C 2 ) = a sin ( B 2 ) sin ( C 2 ) cos ( A 2 ) {\displaystyle r={{a} \over {\cot({\frac {B}{2}})+\cot({\frac {C}{2}})}}=a{{\sin({\frac {B}{2}})\sin({\frac {C}{2}})} \over {\cos({\frac {A}{2}})}}}
By symmetry, there are two other formulae involving b and c respectively.
Substituting a = 2Rsin(A), it follows that
r = 4 R sin ( A 2 ) sin ( B 2 ) sin ( C 2 ) {\displaystyle r=4R\sin \left({\frac {A}{2}}\right)\sin \left({\frac {B}{2}}\right)\sin \left({\frac {C}{2}}\right)}
r⁄ R thus equals 1⁄ 2 for an equilateral triangle, and it can be shown that it is less than this for any other triangle.
The Equal Incircles Theorem [ edit | edit source ]
Consider a straight line and a point X not on that line. Choose points A, B, C, D, E, F … such that the triangles XAB, XBC, XCD, XDE, XEF, … have equal inradii. Then the triangles XAC, XBD, XCE, XDF, … will have inradii equal to each other (though larger than the inradius of XAB). Similarly, the triangles XAD, XBE, XCF, will have inradii equal to each other and so on.
Another circle [ edit | edit source ]
There are three points where the angle bisectors intersect the opposite sides. These three points define a circle that will, in general, cut each side twice, defining three chords of the circle. (In an isosceles triangle, the base is a tangent to the circle; in an equilateral triangle, all three sides are tangents.) The length of the longest chord equals the sum of the lengths of the other two chords.
Area of Incircle of a Right Angled Triangle
Given the P, B and H are the perpendicular, base and hypotenuse respectively of a right angled triangle. The task is to find the area of the incircle of radius r as shown below:
Examples:
Input: P = 3, B = 4, H = 5
Output: 3.14
Input: P = 5, B = 12, H = 13
Output: 12.56
Approach: Formula for calculating the inradius of a right angled triangle can be given as r = ( P + B – H ) / 2.
And we know that the area of a circle is PI * r2 where PI = 22 / 7 and r is the radius of the circle.
Hence the area of the incircle will be PI * ((P + B – H) / 2)2.
Below is the implementation of the above approach:
C++
#include
using namespace std; #define PI 3.14159265 float area_inscribed( float P, float B, float H) { return ((P + B – H) * (P + B – H) * (PI / 4)); } int main() { float P = 3, B = 4, H = 5; cout << area_inscribed(P, B, H) << endl; return 0; } C #include #define PI 3.14159265 float area_inscribed( float P, float B, float H) { return ((P + B – H) * (P + B – H) * (PI / 4)); } int main() { float P = 3, B = 4, H = 5; printf ( “%f” , area_inscribed(P, B, H)); return 0; } Java import java.lang.*; class GFG { static double PI = 3.14159265 ; public static double area_inscribed( double P, double B, double H) { return ((P + B – H) * (P + B – H) * (PI / 4 )); } public static void main(String[] args) { double P = 3 , B = 4 , H = 5 ; System.out.println(area_inscribed(P, B, H)); } } Python3
PI = 3.14159265 def area_inscribed(P, B, H): return ((P + B – H) * (P + B – H) * (PI / 4 )) P = 3 B = 4 H = 5 print (area_inscribed(P, B, H)) C#
using System; class GFG { static double PI = 3.14159265; public static double area_inscribed( double P, double B, double H) { return ((P + B – H) * (P + B – H) * (PI / 4)); } public static void Main() { double P = 3.0, B = 4.0, H = 5.0; Console.Write(area_inscribed(P, B, H)); } } PHP
Javascript
Output: 3.141593
Time Complexity : O(1)
Auxiliary Space: O(1)
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