Prove that $$sec^2 x - cosec^2 x = tan^2 x - cot^2 x.$$ (ii) Given that $$y = arccos x, \, -1 ≤ x ≤ 1 \, and \, 0 ≤ y ≤ \, π,$$ (a) express arcsin x in terms of y - Edexcel - A-Level Maths Pure - Question 2 - 2006 - Paper 4

To prove this identity, we start with the left-hand side:
$LHS = sec^2 x - cosec^2 x.$
Using the definitions of secant and cosecant:
$sec^2 x = \frac{1}{cos^2 x}, \, cosec^2 x = \frac{1}{sin^2 x},$
we rewrite it as:
$LHS = \frac{1}{cos^2 x} - \frac{1}{sin^2 x} = \frac{sin^2 x - cos^2 x}{sin^2 x cos^2 x}.$
Now we apply the identity for tangent and cotangent:
$tan^2 x = \frac{sin^2 x}{cos^2 x}, \, cot^2 x = \frac{cos^2 x}{sin^2 x}.$
Rearranging gives us:
$RHS = tan^2 x - cot^2 x = \frac{sin^2 x}{cos^2 x} - \frac{cos^2 x}{sin^2 x} = \frac{sin^4 x - cos^4 x}{sin^2 x cos^2 x}.$
Thus, both sides are equal, confirming the identity.