Statement
edit
In any triangle, the square of one side's length is equal to the difference between the sum of the squares of the other two sides' lengths and twice the product of those two sides' lengths and the cosine of the included angle.
Assume,
Δ
A
B
C
{\displaystyle \Delta ABC}
∠
A
C
B
=
θ
,
{\displaystyle \angle ACB=\theta ,}
A
B
=
c
{\displaystyle AB=c}
A
C
=
b
{\displaystyle AC=b}
B
C
=
a
.
{\displaystyle BC=a.}
c
2
=
a
2
+
b
2
−
2
a
b
⋅
cos
θ
{\displaystyle c^{2}=a^{2}+b^{2}-2ab\cdot \cos \theta }
Let us extend the line segment
B
C
{\displaystyle BC}
B
D
{\displaystyle BD}
A
D
⊥
B
D
{\displaystyle AD\perp BD}
A
D
=
h
{\displaystyle AD=h}
C
D
=
k
{\displaystyle CD=k}
Proof with the help of the Pythagorean Theorem
edit
For obtuse triangles:
edit
Construction for proving the law of cosines for angle
θ
>
π
/
2
{\displaystyle \theta >\pi /2}
According to the Pythagorean theorem, we can say that, for
Δ
A
C
D
,
{\displaystyle \Delta ACD,}
b
2
=
k
2
+
h
2
{\displaystyle b^{2}=k^{2}+h^{2}}
Similarly, for the triangle
Δ
A
B
D
,
{\displaystyle \Delta ABD,}
c
2
=
h
2
+
(
a
+
k
)
2
{\displaystyle c^{2}=h^{2}+(a+k)^{2}}
=
h
2
+
a
2
+
k
2
+
2
a
k
{\displaystyle =h^{2}+a^{2}+k^{2}+2ak}
=
a
2
+
b
2
+
2
a
k
{\displaystyle =a^{2}+b^{2}+2ak}
We will be using this value for further proof. But now, let's determine some trigonometric values for the triangles.
Here,
∠
A
C
D
=
π
−
θ
{\displaystyle \angle ACD=\pi -\theta }
Therefore,
k
b
=
cos
(
π
−
θ
)
{\displaystyle {\frac {k}{b}}=\cos(\pi -\theta )}
Or,
k
=
b
⋅
cos
(
π
−
θ
)
{\displaystyle k=b\cdot \cos(\pi -\theta )}
=
b
[
cos
(
π
)
⋅
c
o
s
(
θ
)
+
sin
(
π
)
⋅
sin
(
θ
)
]
{\displaystyle =b[\cos(\pi )\cdot cos(\theta )+\sin(\pi )\cdot \sin(\theta )]}
=
−
b
⋅
cos
(
θ
)
{\displaystyle =-b\cdot \cos(\theta )}
Now,
c
2
=
a
2
+
b
2
+
2
a
k
{\displaystyle c^{2}=a^{2}+b^{2}+2ak}
∴
c
2
=
a
2
+
b
2
−
2
a
b
⋅
cos
θ
{\displaystyle \therefore c^{2}=a^{2}+b^{2}-2ab\cdot \cos \theta }
[Proved]
For acute angles:
edit
Construction for proving the law of cosines for angle
θ
<
π
/
2
{\displaystyle \theta <\pi /2}
Like as the proof we have proved before, according to the Pythagorean theorem, we can say that, for
Δ
A
C
D
,
{\displaystyle \Delta ACD,}
b
2
=
k
2
+
h
2
{\displaystyle b^{2}=k^{2}+h^{2}}
Similarly, for the triangle
Δ
A
B
D
,
{\displaystyle \Delta ABD,}
c
2
=
h
2
+
(
a
−
k
)
2
{\displaystyle c^{2}=h^{2}+(a-k)^{2}}
=
h
2
+
a
2
+
k
2
−
2
a
k
{\displaystyle =h^{2}+a^{2}+k^{2}-2ak}
=
a
2
+
b
2
−
2
a
k
{\displaystyle =a^{2}+b^{2}-2ak}
Here,
∠
A
C
D
=
θ
{\displaystyle \angle ACD=\theta }
Therefore,
k
b
=
cos
θ
{\displaystyle {\frac {k}{b}}=\cos \theta }
⇒
k
=
b
⋅
cos
θ
{\displaystyle \Rightarrow k=b\cdot \cos \theta }
Now,
c
2
=
a
2
+
b
2
−
2
a
k
{\displaystyle c^{2}=a^{2}+b^{2}-2ak}
∴
c
2
=
a
2
+
b
2
−
2
a
b
⋅
cos
θ
{\displaystyle \therefore c^{2}=a^{2}+b^{2}-2ab\cdot \cos \theta }
[Proved]
[Note: Whatever the triangle is, the formula,
c
2
=
a
2
+
b
2
−
2
a
b
⋅
cos
θ
{\displaystyle c^{2}=a^{2}+b^{2}-2ab\cdot \cos \theta }
![{\displaystyle =b[\cos(\pi )\cdot cos(\theta )+\sin(\pi )\cdot \sin(\theta )]}](https://wikimedia.org/api/rest_v1/media/math/render/svg/1da982b5b73a75c5f627c5c65f72c819bcdee6e4)
