If A = 45 , verify that : (i) sin 2A = 2 sin A cos A (ii) cos 2A = (2 cos2A - 1) = (1 - 2 sin2A)

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(i) L.H.S. : sin 2A = sin 2(45 ) = sin 90 = 1 R.H.S. : 2 sin A cos A = 2 sin 45 cos 45 = = 1. Hence, proved that sin 2A = 2 sin A cos A. (ii) Substituting value of A = 45 in cos 2A, we get : cos 2A = cos 2(45 ) = cos 90 = 0. Substituting value of A = 45 in 2 cos2A - 1, we get : ⇒ 2 cos2A - 1 = 2 cos245 - 1 = 2 (cos 45 )2 - 1 = - 1 = = 1 - 1 = 0. Substituting value of A = 45 in 1 - 2 sin2A, we get : ⇒ 1 - 2 sin2A = 1 - 2 sin245 = 1 - 2 (sin 45 )2 = 1 - = 1 - = 1 - 1 = 0. Hence, proved that cos 2A = (2 cos2A - 1) = (1 - 2 sin2A).

Mathematics

If A = 45°, verify that :
(i) sin 2A = 2 sin A cos A
(ii) cos 2A = (2 cos²A - 1) = (1 - 2 sin²A)

Trigonometrical Ratios

Answer

Related Questions

Verify each of the following :
(i) cos 60° cos 30° - sin 60° sin 30° = 0
(ii) cos 60° = (1 - 2 sin²30°) = (2 cos²30° - 1)
(iii) tan 30° = $\Big(\dfrac{\tan 60^\circ - \tan 30^\circ}{1 + \tan 60^\circ \tan 30^\circ}\Big)$

Verify each of the following :
(i) sin 60° cos 30° - cos 60° sin 30° = sin 30°
(ii) 2 sin 30° cos 30° = sin 60°
(iii) 2 sin 45° cos 45° = sin 90°

If A = 30°, prove that :
(i) sin 2A = $\dfrac{2 \tan A}{1 + \tan^2A}$
(ii) cos 2A = $\Big(\dfrac{1 - \tan^2A}{1 + \tan^2A}\Big)$

If A = B = 45°, show that :
(i) sin(A - B) = sin A cos B - cos A sin B
(ii) cos(A + B) = cosA cosB - sin A sin B

Mathematics

If A = 45°, verify that :(i) sin 2A = 2 sin A cos A(ii) cos 2A = (2 cos2A - 1) = (1 - 2 sin2A)