Time consistency in the context of finance is the property of not having mutually contradictory evaluations of risk at different points in time. This property implies that if investment A is considered riskier than B at some future time, then A will also be considered riskier than B at every prior time.
Time consistency and financial risk Time consistency is a property in financial risk related to dynamic risk measures. The purpose of the time-consistent property is to categorize the risk measures which satisfy the condition that if portfolio (A) is riskier than portfolio (B) at some time in the future, then it is guaranteed to be riskier at any time prior to that point. This is an important property since if it were not to hold then there is an event (with probability of occurring greater than 0) such that B is riskier than A at time t {\displaystyle t} although it is certain that A is riskier than B at time t + 1 {\displaystyle t+1} . As the name suggests a time inconsistent risk measure can lead to inconsistent behavior in financial risk management.
Mathematical definition A dynamic risk measure ( ρ t ) t = 0 T {\displaystyle \left(\rho _{t}\right)_{t=0}^{T}} on L 0 ( F T ) {\displaystyle L^{0}({\mathcal {F}}_{T})} is time consistent if ∀ X , Y ∈ L 0 ( F T ) {\displaystyle \forall X,Y\in L^{0}({\mathcal {F}}_{T})} and t ∈ { 0 , 1 , . . . , T − 1 } : ρ t + 1 ( X ) ≥ ρ t + 1 ( Y ) {\displaystyle t\in \{0,1,...,T-1\}:\rho _{t+1}(X)\geq \rho _{t+1}(Y)} implies ρ t ( X ) ≥ ρ t ( Y ) {\displaystyle \rho _{t}(X)\geq \rho _{t}(Y)} .
Equivalent definitions Equality For all t ∈ { 0 , 1 , . . . , T − 1 } : ρ t + 1 ( X ) = ρ t + 1 ( Y ) ⇒ ρ t ( X ) = ρ t ( Y ) {\displaystyle t\in \{0,1,...,T-1\}:\rho _{t+1}(X)=\rho _{t+1}(Y)\Rightarrow \rho _{t}(X)=\rho _{t}(Y)}
Recursive For all t ∈ { 0 , 1 , . . . , T − 1 } : ρ t ( X ) = ρ t ( − ρ t + 1 ( X ) ) {\displaystyle t\in \{0,1,...,T-1\}:\rho _{t}(X)=\rho _{t}(-\rho _{t+1}(X))}
Acceptance Set For all t ∈ { 0 , 1 , . . . , T − 1 } : A t = A t , t + 1 + A t + 1 {\displaystyle t\in \{0,1,...,T-1\}:A_{t}=A_{t,t+1}+A_{t+1}} where A t {\displaystyle A_{t}} is the time t {\displaystyle t} acceptance set and A t , t + 1 = A t ∩ L p ( F t + 1 ) {\displaystyle A_{t,t+1}=A_{t}\cap L^{p}({\mathcal {F}}_{t+1})}
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