Solution
ID: past-exam-of-the-mathematics-course-of-the-university-of-cambridge/2015/iii/paper-40/4/b/solution
Past exam of the mathematics course of the University of Cambridge 2015 iii Paper 40 4 b Solution by
Codex 0 Created 2026-10-03 Updated 2026-10-06
The coefficient is , but independence alone does not make the printed right-hand side -measurable. The future variance integral need not be known at time . This is a genuine missing information assumption in the PDF.
The Itô formula or explicit stochastic exponential givesIf the volatility path is fixed at time zero and independent of , conditioning on that path makes the first factor an exponential of a centered Gaussian variable with the compensating half-variance, so its conditional expectation is one. More generally, this conditioning works when enlarging the filtration by the entire independent volatility path preserves the Brownian property. For the usual joint filtration of Brownian history and independent volatility history, the valid conditional square-root price under independent volatility isWhen the integral is already -measurable, the outer conditional expectation can be removed, giving the intended printed formula. In particular this holds for deterministic volatility or an independent path disclosed initially.
For a counterexample to the unqualified printed assertion, take an independent fair Bernoulli variable , disclose it at time , and letWith the filtration generated by the Brownian history and this disclosure, is Brownian and is bounded, continuous, adapted, and independent of . At , the variance integral is , while is trivial. Direct Gaussian conditioning givesa constant. The proposed factor is random, so cannot equal that conditional expectation. The formula requires knowledge of future integrated variance; independence by itself is insufficient.
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