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Let $\mu$ be a probability measure on $X$.

Consider a family of functions $\phi_k: X \rightarrow \mathbb{R}_{\geq 0}$ such that $\sup_k \phi_k(\cdot)$ is integrable over $X$.

Let $\{X_n\}$ be an infinite sequence of compact sets such that $X_n \subset X$, $X_n \subseteq X_{n+1}$ and $X_n \rightarrow X$.

It seems to me that the following implication is true.

$ \int_{X_n}\sup_k \phi_k(x) \mu(dx) \leq \Phi(x) \ \forall X_n \ \Rightarrow \ \int_X \sup_k \phi_k(x) \mu(dx) \leq \Phi(x)$

Is it only a matter of applying the $\lim_{n \to \infty}$ since $\Phi(x)$ is not depending on $n$?

Is such family $\{\phi_k\}$ Uniformly Integrable?

  • 0
    A variant of this can be found in [this post](http://math.stackexchange.com/questions/165144/integrable-over-compact-sets-plus-uniform-integrable).2012-07-01

1 Answers 1

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We use Fatou lemma: let $f_n:=\chi_{X_n}(x)\sup_k\phi_k(x)$. It's a non-negative function, and $\lim_{n\to+\infty}f_n=\chi_x\sup_k\phi_k(x)$. We have $\int_X\sup_k\phi_k(x)\mu(dx)=\int_X\liminf_{n\to \infty}f_n(x)\mu(dx)\leq \liminf_{n\to \infty} \int_Xf_n(x)\mu(dx)$ and since $\int_Xf_n(x)\mu(dx)\leq \Phi(x)$ for all $n$ we get the result.

For the second question, if $\mathcal F\subset L^1(\mu)$ is such that there exist $g\in L^1(\mu)$ which satisfies $|f(x)|\leq g(x)$ for almost all $x$ and all $f\in\mathcal F$, then $\mathcal F$ is uniformly integrable. Indeed, $0\leq \sup_{f\in\mathcal F}\int_{\{|f|\geq R\}}|f|d\mu\leq \int_{\{g\geq R\}}gd\mu$ which converges to $0$ when $R\to +\infty$ thanks to the monotone convergence theorem.

  • 0
    A variant of this can be found in [this post](http://math.stackexchange.com/questions/165144/integrable-over-compact-sets-plus-uniform-integrable).2012-07-01