(a) (i) Use differentiation from first principles to show that \( \frac{d}{dx}(x) = 1 \) - HSC - SSCE Mathematics Extension 1 - Question 7 - 2009 - Paper 1

To prove by induction:

Base case (for ( n=1 )): ( \frac{d}{dx}(x^1) = 1 = 1 \cdot x^{1-1}. )

Inductive step: Assume true for ( n=k ): ( \frac{d}{dx}(x^k) = kx^{k-1} ). Prove for ( n=k+1 ):

Using the product rule: [ \frac{d}{dx}(x^{k+1}) = \frac{d}{dx}(x^k \cdot x) = x^k \cdot \frac{d}{dx}(x) + x \cdot \frac{d}{dx}(x^k) ] [ = x^k \cdot 1 + x \cdot kx^{k-1} = x^k + kx^k = (k+1)x^k. ]

Thus, by induction, ( \frac{d}{dx}(x^n) = nx^{n-1} ) for all positive integers ( n ).

Let ( A = \tan^{-1}(\frac{a}{x}) ) and ( B = \tan^{-1}(h) ). Thus,

Substituting into identity:

To find the maximum, we set ( \frac{d\theta}{dx} = 0 ) and solve for ( x ). The differentiation of ( \theta ) gives:

$\frac{d\theta}{dx} = \frac{1}{1 + \left(\frac{a}{x}\right)^2} \cdot \left(-\frac{a}{x^2} \ln{g}\right)$ Setting this to zero to find critical points, we can simplify the equation, eventually leading to the value of ( x ) where maximum occurs.

Given that ( PQ ) and ( PR ) create different angles with respect to the vertical, by properties of angles in a circle: when ( P ) and ( R ) differ, then ( \theta < \phi ) follows since the subtended angles increase with distance. Thus, for maximum angle ( \theta ), points must coincide, proving maximum at position of contact with tangent at T.

By applying the distance formula and considering the triangle formed by points ( P, Q, R, T ), we can derive: $TO = OR \text{ (Tangent-Secant theorem) } \implies d = \sqrt{a^2 + h^2} \text{ (using right triangle properties). }$ Thus, the distance from building to T is determined by these calculated properties.