Absolutely Continuous Measures: Difference between revisions

Latest revision as of 18:38, 19 December 2020

Definitions

Let $(X,{\mathcal {M}},\mu _{1})$ be a measure space. The measure $\mu _{2}:{\mathcal {M}}\rightarrow [0,\infty ]$ is said to be absolutely continuous with respect to the measure $\mu _{1}$ if we have that $\mu _{2}(T)=0$ for $T\in {\mathcal {M}}$ such that $\mu _{1}(T)=0$ (see [1]). In this case, we denote that $\mu _{2}$ is absolutely continuous with respect to $\mu _{1}$ by writing $\mu _{2}\ll \mu _{1}$ .

Examples

Recall that if $f:X\rightarrow [0,\infty ]$ is a measurable function, then the set function $\mu _{2}(T)=\int _{T}f\,d\mu _{1}$ for $T\in {\mathcal {M}}$ is a measure on $(X,{\mathcal {M}},\mu _{1})$ . Observe that if $\mu _{1}(T)=0$ , then $\mu _{2}(T)=\int _{X}f\cdot \mathbb {1} _{T}\,d\mu _{1}=0$ so that $\mu _{2}\ll \mu _{1}$ (see [3] for further details on this example and others).

Properties

It was previously established on a homework problem that for some nonnegative measurable $f\in L^{1}(\mu _{1})$ defined on the measure space $(X,{\mathcal {M}},\mu _{1})$ and some arbitrarily chosen $\epsilon >0$ , there exists $\delta >0$ such that $\int _{T}f\,d\mu _{1}<\epsilon$ whenever $\mu _{1}(T)<\delta$ (see [2]). The method that was used to establish this result can also be used to show that, in a finite measure space, if $\mu _{2}\ll \mu _{1}$ , then for some arbitrarily chosen $\epsilon >0$ , there exists $\delta >0$ such that $\mu _{1}(T)<\delta \implies \mu _{2}(T)<\epsilon$ .

In particular, we proceed by contradiction and suppose there exists

\epsilon >0

so that for any

\delta >0

and

\mu _{1}(T)<\delta

, we have

\mu _{2}(T)\geq \epsilon

. Now, define a sequence of sets

\{T_{n}\}_{n\in \mathbb {N} }\subseteq {\mathcal {M}}

such that

\mu _{1}(T_{n})<{\frac {\epsilon }{2^{n}}}

and denote

T=\limsup {T_{n}}=\cap _{n=1}^{\infty }G_{n}\in {\mathcal {M}}

where

G_{n}=\cup _{k=n}^{\infty }T_{k}

. We have from countable subadditivity that

\mu _{1}(G_{n})\leq \sum _{k=n}^{\infty }\mu _{1}(T_{k})<\sum _{k=n}^{\infty }{\frac {\epsilon }{2^{k}}}={\frac {\epsilon }{2^{n+1}}}\,\forall n\in \mathbb {N}

. We have from monotonicity that

\mu _{2}(G_{n})\geq \epsilon \,\,\forall n\in \mathbb {N}

. The monotonicity of the measure

\mu _{1}

implies that

\mu _{1}(\cap _{n=1}^{\infty }G_{n})=\mu _{1}(\limsup {T_{n}})=\mu _{1}(T)=0<\delta

. Applying continuity from above to

\mu _{2}

, we also have

\mu _{2}(T)\geq \epsilon

. However, this contradicts the definition of

\mu _{2}\ll \mu _{1}

.

In fact, the converse to the above result also holds (see [3]). Namely, if we have $\forall \epsilon >0$ that there exists $\delta >0$ so that $\mu _{1}(T)<\delta \implies \mu _{2}(T)<\epsilon$ , then $\mu _{2}\ll \mu _{1}$ . Suppose that $\mu _{1}(T)=0$ for some $T\in {\mathcal {M}}$ . Then, for any such $\epsilon >0$ as in the preceding claim, we have $\mu _{1}(T)=0<\delta \implies \mu _{2}(T)<\epsilon$ . Since $\epsilon >0$ can be taken to be arbitrarily small, we have that $\mu _{2}(T)=0$ , as required for the measure $\mu _{2}$ to be absolutely continuous with respect to $\mu _{1}$ .

References

[1]: Taylor, M. "Measure Theory and Integration". 50-51.

[2]: Craig, K. "Math 201a: Homework 8". Fall 2020. Refer to question 2.

[3]: Rana, I. K. "Introduction to Measure and Integration". Second Edition. 311-313.

@@ Line 1: / Line 1: @@
 ==Definitions==
-Let <math> (X,\mathcal{M},\mu_1) </math> be a measure space. The measure <math> \mu_2:\mathcal{M}\rightarrow [0,\infty] </math> is said to be absolutely continuous with respect to the measure <math> \mu_1 </math> if we have that <math> \mu_2(T) = 0 </math> for <math> T\in \mathcal{M}</math> such that <math> \mu_1(T) = 0</math> (see [1]). In this case, we denote that <math> \mu_2</math> is absolutely continuous with respect to <math> \mu_1</math> by writing <math> \mu_2 \ll \mu_1 </math>.
+Let <math> (X,\mathcal{M},\mu_1) </math> be a [[Measures#Definition|measure space]]. The measure <math> \mu_2:\mathcal{M}\rightarrow [0,\infty] </math> is said to be absolutely continuous with respect to the measure <math> \mu_1 </math> if we have that <math> \mu_2(T) = 0 </math> for <math> T\in \mathcal{M}</math> such that <math> \mu_1(T) = 0</math> (see [1]). In this case, we denote that <math> \mu_2</math> is absolutely continuous with respect to <math> \mu_1</math> by writing <math> \mu_2 \ll \mu_1 </math>.
 ==Examples==
-Recall that if <math> f:X\rightarrow [0,\infty]</math> is a measurable function, then the set function <math> \mu_2(T) = \int_{T} f \,d\mu_1</math> for <math> T\in \mathcal{M}</math> is a measure on <math> (X,\mathcal{M},\mu_1) </math>. Observe that if <math> \mu_1(T) = 0</math>, then <math> \mu_2(T) = \int_{X} f\cdot \chi_T \,d\mu_1 = 0</math> so that <math> \mu_2 \ll \mu_1 </math>.
+Recall that if <math> f:X\rightarrow [0,\infty]</math> is a [[Measurable_function|measurable function]], then the set function <math> \mu_2(T) = \int_{T} f \,d\mu_1</math> for <math> T\in \mathcal{M}</math> is a measure on <math> (X,\mathcal{M},\mu_1) </math>. Observe that if <math> \mu_1(T) = 0</math>, then <math> \mu_2(T) = \int_{X} f\cdot \mathbb{1}_T \,d\mu_1 = 0</math> so that <math> \mu_2 \ll \mu_1 </math> (see [3] for further details on this example and others).
 ==Properties==
-It was previously established on a homework problem that for some nonnegative measurable <math> f\in L^1(\mu_1)</math> defined on the measure space <math> (X,\mathcal{M},\mu_1) </math> and some arbitrarily chosen <math> \epsilon > 0</math>, there exists <math> \delta > 0 </math> such that <math> \int_{T} f \,d\mu_1 < \epsilon</math> whenever <math> \mu_1(T) < \delta</math> (see [2]). The method that was used to establish this result can also be used to show that, in a finite measure space, if <math> \mu_2 \ll \mu_1</math>, then for some arbitrarily chosen <math> \epsilon > 0</math>, there exists <math> \delta > 0 </math> such that <math> \mu_2(T) < \epsilon </math> whenever <math> \mu_1(T) < \delta</math>.
+It was previously established on a homework problem that for some nonnegative measurable <math> f\in L^1(\mu_1)</math> defined on the measure space <math> (X,\mathcal{M},\mu_1) </math> and some arbitrarily chosen <math> \epsilon > 0</math>, there exists <math> \delta > 0 </math> such that <math> \int_{T} f \,d\mu_1 < \epsilon</math> whenever <math> \mu_1(T) < \delta</math> (see [2]). The method that was used to establish this result can also be used to show that, in a finite measure space, if <math> \mu_2 \ll \mu_1</math>, then for some arbitrarily chosen <math> \epsilon > 0</math>, there exists <math> \delta > 0 </math> such that <math> \mu_1(T) < \delta \implies \mu_2(T) < \epsilon </math>.
-:In particular, we proceed by contradiction and suppose there exists <math> \epsilon > 0</math> so that for any <math> \delta > 0 </math> and <math> \mu_1(T) < \delta</math>, we have <math> \mu_2(T) \geq \epsilon </math>. Now, define a sequence of sets <math> \{T_n\}_{n\in \mathbb{N}}\subseteq \mathcal{M}</math> such that <math> \mu_1(T_n) < \frac{\epsilon}{2^n}</math> and denote <math> T=\limsup{T_n}=\cap_{n=1}^{\infty} G_n \in \mathcal{M}</math> where <math> G_n = \cup_{k=n}^{\infty}T_k</math>. We have from countable subadditivity that <math> \mu_1(G_n) \leq \sum_{k=n}^{\infty} \mu_1(T_k)=\sum_{k=n}^{\infty} \frac{\epsilon}{2^k} = \frac{\epsilon}{2^{n+1}}\forall n\in\mathbb{N}</math>.
+:In particular, we proceed by contradiction and suppose there exists <math> \epsilon > 0</math> so that for any <math> \delta > 0 </math> and <math> \mu_1(T) < \delta</math>, we have <math> \mu_2(T) \geq \epsilon </math>. Now, define a sequence of sets <math> \{T_n\}_{n\in \mathbb{N}}\subseteq \mathcal{M}</math> such that <math> \mu_1(T_n) < \frac{\epsilon}{2^n}</math> and denote <math> T=\limsup{T_n}=\cap_{n=1}^{\infty} G_n \in \mathcal{M}</math> where <math> G_n = \cup_{k=n}^{\infty}T_k</math>. We have from countable subadditivity that <math> \mu_1(G_n) \leq \sum_{k=n}^{\infty} \mu_1(T_k)<\sum_{k=n}^{\infty} \frac{\epsilon}{2^k} = \frac{\epsilon}{2^{n+1}}\,\forall n\in\mathbb{N}</math>. We have from monotonicity that <math> \mu_2(G_n) \geq \epsilon \,\, \forall n\in \mathbb{N} </math>. The monotonicity of the measure <math> \mu_1 </math> implies that <math> \mu_1(\cap_{n=1}^{\infty} G_n)=\mu_1(\limsup{T_n}) = \mu_1(T) = 0 < \delta</math>. Applying continuity from above to <math> \mu_2</math>, we also have <math> \mu_2(T) \geq \epsilon </math>. However, this contradicts the definition of <math>\mu_2 \ll \mu_1</math>.
+In fact, the converse to the above result also holds (see [3]). Namely, if we have <math> \forall \epsilon > 0</math> that there exists <math> \delta > 0</math> so that <math>  \mu_1(T) < \delta \implies \mu_2(T) < \epsilon </math>, then <math> \mu_2 \ll \mu_1</math>. Suppose that <math> \mu_1(T) = 0</math> for some <math> T\in \mathcal{M}</math>. Then, for any such <math> \epsilon > 0</math> as in the preceding claim, we have <math> \mu_1(T) = 0 < \delta \implies \mu_2(T) < \epsilon</math>. Since <math> \epsilon > 0</math> can be taken to be arbitrarily small, we have that <math> \mu_2(T) = 0</math>, as required for the measure <math> \mu_2</math> to be absolutely continuous with respect to <math> \mu_1</math>.
 ==References==
 [1]: Taylor, M. "Measure Theory and Integration". 50-51.
-[2]: Craig, K. "Math 201a: Homework 8". Refer to question 2.
+[2]: Craig, K. "Math 201a: Homework 8". Fall 2020. Refer to question 2.
+[3]: Rana, I. K. "Introduction to Measure and Integration". Second Edition. 311-313.

Absolutely Continuous Measures: Difference between revisions

Latest revision as of 18:38, 19 December 2020

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Examples

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References

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Absolutely Continuous Measures: Difference between revisions

Latest revision as of 18:38, 19 December 2020

Definitions

Examples

Properties

References

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