Question

cotA=4 , find the value of cos²A-sin²A​

Answer 1

Answer:

∠B=90

o

cotA=

B

A

=

3

4

Let AB=4x,BC=3x.

AC

2

=AB+BC

2

AC

2

=16k

2

+9x

2

AC

2

=25x

2

AC=5x

Now, tanA=

4

3

LHS :

1+tan

2

A

1−tan

2

A

=

1+

16

9

1−

16

9

=

25

7

RHS : cos

2

A−sin

2

A=(

5

4

)

2

−(

5

3

)

2

=

25

16

−

25

9

=

25

7

⇒LHS=RHS

∴

1+tan

2

A

1−tan

2

A

=cos

2

A−sin

2

A

Answer 2

Step-by-step explanation:

I hope it is helpful....