Why VIX Futures Greeks Depend on the Option Basket Model
Summary
The document discusses how to interpret sensitivities of VIX futures to the S&P index, volatility, rates, and time. It describes VIX as derived from a weighted basket of SPX options and notes that a futures contract’s settlement references a later option expiry. In the explanation offered, the futures value involves an expectation of the square root of the option basket value, so sensitivities do not follow by simply applying the ordinary chain rule to the basket or its component options.
The answers differ in how useful they consider conventional Greeks for futures, but emphasize that any implied sensitivities depend on assumptions about the underlying option basket and its pricing. One response points to specialized Malliavin differentiation for a derivative of the expectation, while another recommends basing implied Greeks on modeled expectations. Historical option data is cited as a reason such expectations may be unreliable. No explicit calculation procedure or validated model is provided, so the discussion is conceptual and model-dependent.
Key ideas
- VIX is derived from a basket of S&P options, and VIX futures reflect expectations about that basket at settlement.
- The square root and expectation in the futures valuation complicate sensitivity calculations.
- Simple chain-rule reasoning does not directly map component option Greeks to VIX futures Greeks.
- Implied sensitivities depend on the assumptions and accuracy of the option basket model.
- The responses offer conceptual guidance rather than a reproducible calculation method.
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Full text
# How can one compute the Greeks on VIX Futures
# How can one compute the Greeks on VIX Futures
I am guessing the short answer to this question is "use the chain rule and linearity of the derivative," but I am looking for more specific advice on how to compute the derivatives of a VIX futures contract. Roughly speaking, the VIX index represents a rolling weighted position in a bunch of S&P call & put options at different strikes. Generally speaking, one cannot buy and sell spot VIX, but there are VIX futures contracts. I would like to be able to compute the sensitivity of the price of the futures contract to: the price of the underlying (in this case the S&P index), volatility of the underlying, change in volatility of the underlying, the risk-free rate, and time.
## Answer by onlyvix.blogspot.com (score 8)
https://quant.stackexchange.com/a/1907
VIX is calculated from a basket of SPX options, and VIX futures expire into following expiration, e.g. September VIX futures that will expire next Wednesday will use SPX October options chain to calculate settlement value. If $B$ is the value of the basket then VIX value at expiration is $\sqrt{ B }$. Then VIX futures price is the expectation of the basket $VIX _{F} = E[\sqrt{ B }]$. Delta of the VIX futures price with respect to the basket would be $$\ \frac{\partial VIX _{F}}{\partial B} = \frac{\partial E[\sqrt{ B }]}{\partial B}$$
As you can see that taking that expectation is not simple, since there is no simple connection between VIX futures greeks and SPX options greeks because of the expectation and square root. So "use the chain rule and linearity of the derivative" approach would not get you anywhere. But that does not mean that such derivative is 0. Such derivative can be calculated in Malliavin sense, but that is probably not what you're looking for.
## Answer by Lliane (score 6)
https://quant.stackexchange.com/a/1848
Short Answer : Futures don't have Greeks
Long Answer : Assuming a non strictly mathematical (i.e. false) point of view.
Well, having Greeks on VIX Futures is not relevant, VIX value is itself a "Greek" (and Futures don't have Greeks).
Sensitivity to
- Price of the Underlying : Insensitive (ν = 0)
- Volatility of the Underlying : Delta Δ = 1 (to Volatility of S&P Option Combination used to compute VIX)
- Change in Volatility of the Underlying : Gamma Γ = 1
Volatility of VIX should be Vega of S&P Option Combination used to compute VIX Vega of VIX should be Vomma of S&P Option Combination used to compute VIX
You can compute the Greeks on the VIX Options, it would be more relevant, but don't expect relationships with the S&P Volatility/Prices, VIX is much more complex than simple plain Volatility of S&P.
## Answer by Soma Holiday (score 2)
https://quant.stackexchange.com/a/3035
I would calculate implied greeks based on the expectations for the underlying S&P option basket. Unfortunately, these are just expectations as I have a database of 17 years of S&P options pricing that will tell you your expectations are likely wrong more often than not. If you had a pricing model that had these expectations built in, I think the resulting greeks would be as correct as your pricing model.Shown in full with attribution under the source's licence. Licence: CC BY-SA 4.0 (Stack Exchange)
This summary was written by Stratmill's research agent from the original; it is not a copy of the source.