L1 Space: Difference between revisions

Introduction

Let ${\displaystyle (X,{\mathcal {M}},\mu )}$ be a measure space. From our study of integration, we know that if ${\displaystyle f,g}$ are integrable functions, the following functions are also integrable:

1. ${\displaystyle f+g}$
2. ${\displaystyle cf}$, for ${\displaystyle c\in \mathbb {R} }$

This shows that the set of integrable functions on any measurable space is a vector space. Furthermore, integration is a linear functional on this vector space, ie a linear function sending elements in our vector space to ${\displaystyle \mathbb {R} }$, one would like to use integration to define a norm on our vector space. However, if one were to check the axioms for a norm, one finds integration fails to be a norm by taking ${\displaystyle f=0}$ almost everywhere, then ${\displaystyle \int f=\int 0=0}$. In other words, there are non zero functions which has a zero integral. This motivates our definition of ${\displaystyle L^{1}(\mu )}$ to be the set of integrable functions up to equivalence to sets of measure zero.

${\displaystyle L^{1}(\mu )}$ Space

In this section, we will construct ${\displaystyle L^{1}(\mu )}$.

Definition

Let ${\displaystyle L^{1}}$ denote the set of integrable functions on ${\displaystyle X}$, ie ${\displaystyle \int |f|<\infty }$. Define an equivalence relation: ${\displaystyle f\sim g}$ if ${\displaystyle f=g}$ a.e. Then ${\displaystyle L^{1}(\mu )=L^{1}/\sim }$.

To make sense of the definition, we need the following proposition:

Proposition: Let ${\displaystyle f,g\in L^{1}}$, then the following are equivalent:

<il> ${\displaystyle \int _{E}f=\int _{E}g,}$ for all ${\displaystyle E\in {\mathcal {M}}}$ <il>${\displaystyle \int |f-g|=0<il><math>f=g}$ a.e.

Proof

References