Defocus aberration

In measure theory, the factorization lemma allows us to express a function f with another function T if f is measurable with respect to T. An application of this is regression analysis.

Theorem

Let ${\displaystyle T:\mathrm{\Omega }\to {\mathrm{\Omega }}^{\prime }}$ be a function of a set ${\displaystyle \mathrm{\Omega }}$ in a measure space ${\displaystyle ({\mathrm{\Omega }}^{\prime },{\mathcal{𝒜}}^{\prime })}$ and let ${\displaystyle f:\mathrm{\Omega }\to \overline{\mathbb{ℝ}}}$ be a scalar function on ${\displaystyle \mathrm{\Omega }}$. Then ${\displaystyle f}$ is measurable with respect to the σ-algebra ${\displaystyle \sigma (T)=T^{-1}({\mathcal{𝒜}}^{\prime })}$ generated by ${\displaystyle T}$ in ${\displaystyle \mathrm{\Omega }}$ if and only if there exists a measurable function ${\displaystyle g:({\mathrm{\Omega }}^{\prime },{\mathcal{𝒜}}^{\prime })\to (\overline{\mathbb{ℝ}},\mathcal{ℬ}(\overline{\mathbb{ℝ}}))}$ such that ${\displaystyle f=g\circ T}$, where ${\displaystyle \mathcal{ℬ}(\overline{\mathbb{ℝ}})}$ denotes the Borel set of the real numbers. If ${\displaystyle f}$ only takes finite values, then ${\displaystyle g}$ also only takes finite values.

Proof

First, if ${\displaystyle f=g\circ T}$, then f is ${\displaystyle \sigma (T)-\mathcal{ℬ}(\overline{\mathbb{ℝ}})}$ measurable because it is the composition of a ${\displaystyle \sigma (T)-{\mathcal{𝒜}}^{\prime }}$ and of a ${\displaystyle {\mathcal{𝒜}}^{\prime }-\mathcal{ℬ}(\overline{\mathbb{ℝ}})}$ measurable function. The proof of the converse falls into four parts: (1)f is a step function, (2)f is a positive function, (3) f is any scalar function, (4) f only takes finite values.

f is a step function

Suppose ${\displaystyle f={\displaystyle \sum _{i=1}^n}{\alpha }_i{1}_{A_i}}$ is a step function, i.e. ${\displaystyle n\in {\mathbb{\mathbb{N}}}^{*},\mathrm{\forall }i\in [[1,n]],A_i\in \sigma (T)}$ and ${\displaystyle {\alpha }_i\in {\mathbb{ℝ}}^{+}}$. As T is a measurable function, for all i, there exists ${\displaystyle {A_i}^{\prime }\in {\mathcal{𝒜}}^{\prime }}$ such that ${\displaystyle A_i=T^{-1}({A_i}^{\prime })}$. ${\displaystyle g={\displaystyle \sum _{i=1}^n}{\alpha }_i{1}_{{A_i}^{\prime }}}$ fulfils the requirements.

f takes only positive values

If f takes only positive values, it is the limit of a sequence ${\displaystyle (u_n{)}_{n\in \mathbb{\mathbb{N}}}}$ of step functions. For each of these, by (1), there exists ${\displaystyle g_n}$ such that ${\displaystyle u_n=g_n\circ T}$. The function ${\displaystyle \underset{n\to +\mathrm{\infty }}{\lim }{g}_n}$ fulfils the requirements.

General case

We can decompose f in a positive part ${\displaystyle f^{+}}$ and a negative part ${\displaystyle f^{-}}$. We can then find ${\displaystyle g_0^{+}}$ and ${\displaystyle g_0^{-}}$ such that ${\displaystyle f^{+}=g_0^{+}\circ T}$ and ${\displaystyle f^{-}=g_0^{-}\circ T}$. The problem is that the difference ${\displaystyle g:=g^{+}-g^{-}}$ is not defined on the set ${\displaystyle U=\{x:g_0^{+}(x)=+\mathrm{\infty }\}\cap \{x:g_0^{-}(x)=+\mathrm{\infty }\}}$. Fortunately, ${\displaystyle T(\mathrm{\Omega })\cap U=\varnothing }$ because ${\displaystyle g_0^{+}(T(\omega ))=f^{+}(\omega )=+\mathrm{\infty }}$ always implies ${\displaystyle g_0^{-}(T(\omega ))=f^{-}(\omega )=0}$ We define ${\displaystyle g^{+}=1_{{\mathrm{\Omega }}^{\prime }\mathrm{\setminus }U}{g}_0^{+}}$ and ${\displaystyle g^{-}=1_{{\mathrm{\Omega }}^{\prime }\mathrm{\setminus }U}{g}_0^{-}}$. ${\displaystyle g=g^{+}-g^{-}}$ fulfils the requirements.

f takes finite values only

If f takes finite values only, we will show that g also only takes finite values. Let ${\displaystyle U^{\prime }=\{\omega :|g(\omega )|=+\mathrm{\infty }\}}$. Then ${\displaystyle g_0=1_{{\mathrm{\Omega }}^{\prime }\mathrm{\setminus }{U}^{\prime }}g}$ fulfils the requirements because ${\displaystyle U^{\prime }\cap T(\mathrm{\Omega })=\varnothing }$.

Importance of the measure space

If the function ${\displaystyle f}$ is not scalar, but takes values in a different measurable space, such as ${\displaystyle \mathbb{ℝ}}$ with its trivial σ-algebra (the empty set, and the whole real line) instead of ${\displaystyle \mathcal{ℬ}(\mathbb{ℝ})}$, then the lemma becomes false (as the restrictions on ${\displaystyle f}$ are much weaker).

References

• Heinz Bauer, Ed. (1992) Maß- und Integrationstheorie. Walter de Gruyter edition. 11.7 Faktorisierungslemma p. 71-72.