We know that
Area of triangle = 1/2 × Base × Height
Here,
Base = BC = b
Height = AD
Finding height
Now,
In an isosceles triangle,
Median & Altitude are the same
So, D is mid-point of BC
∴ BD = DC = b/2
Find area of triangle ABC
We know that
Area of triangle = 1/2 × Base × Height
Here,
Base = BC = b = 4 cm
Height = h = AD = ?
Now,
In an isosceles triangle,
Median and altitude are the same
So, D is mid-point of BC
∴ BD = DC = 4/2
= 2cm
Now,
In ∆ADC, right angled at D
By Pythagoras theorem,
AC 2 = AD 2 + DC 2
(3) 2 = AD 2 + (2) 2
9 = AD 2 + 4
9 − 4 = AD 2
5 = AD 2
AD 2 = 5
AD = √5 cm
So,
Height = h
= AD
= √5 cm
Now,
Area of a triangle = 1/2 × Base × Height
= 1/2 × 4 × √5
= 2 × √5
= 2√5 cm 2
Find Area of triangle Δ ABC
We know that
Area of triangle = 1/2 × Base × Height
Here,
Base = b
= BC
= 2
Height = h
= AD
= ?
Finding height,
Now,
In an isosceles triangle,
Median and altitude on base are the same.
So, D is the mid-point of BC
∴ BD = DC = 2/2
= 1 cm
Now,
In ∆ADC, right angled at D
By Pythagoras theorem.
AC 2 = AD 2 + CD 2
(4) 2 = AD 2 + (1) 2
16 = AD 2 + 1
16 − 1 = AD 2
15 = AD 2
AD 2 = 15
AD = √15 cm
Thus,
Height = AD = √15 cm
Now,
Area of a triangle = 1/2 × Base × Height
= 1/2 × 2 × √15
= √15 cm 2