Prove that if a is any odd integer, then a²−1 is divisible by 8 - HSC - SSCE Mathematics Extension 2 - Question 14 - 2024 - Paper 1

Base Case: For (n = 5): [{5 \choose r} < 2^{5-2} = 2^3 = 8] This is trivially true as ({5 \choose r} ) can be 5 or less.

Inductive Step: Assume true for some integer k, i.e., ({k \choose r} < 2^{k-2}).

For (n = k+1): [{k+1 \choose r} = {k \choose r} + {k \choose r-1}] Using the inductive hypothesis, we have: [{k+1 \choose r} < 2^{k-2} + 2^{k-2} < 2^{(k-2) + 1} = 2^{k-1}] Thus, the statement holds for n = k+1, completing the induction.

Using the property of arguments: Given that (arg(\frac{z}{w}) = -\frac{\pi}{2}), we can express z and w in terms of their magnitudes:

[\left|\frac{z}{z+w}\right| = \frac{|z|}{|z+w|}] Therefore, the answer can be derived from knowing the magnitudes of z and w.

The error in this argument lies in the misapplication of the integral. Substituting back does not cancel the terms legitimately; instead: [\int \frac{1}{x} dx = \ln|x| + C]

When rearranged, it is incorrect to state that 0 = 1 without appropriate justification. The step of subtracting (\int \frac{1}{x} dx) does not yield a valid conclusion.

To prove this, relate the ratios given for points P and B, using segment division: Let OR be represented as a linear combination of OA and OB using the ratios provided. Set: [OR = h(a + b)] Where h is derived from these ratios. Through simplification, we find: [OR = \frac{3}{5}(1-k) + 3kb]

From previous relationships set in the triangle and intersections, utilizing the proportion derived: Set up the equation derived from OR calculation and solve for k: [\frac{3}{5}(1-k) + 3kb = k] Through algebraic manipulation, we arrive at: [k = \frac{1}{6}]

Using the previously defined ratios and equations, substitute the found value of k:

Let OT = h(a + b). Then express everything in terms of a and b, Substituting the derived values leads to the correct expression for OT, yielding desired terms.