User:IssaRice/Little o notation: Difference between revisions

Definition

Definition (little o near a point). Let ${\displaystyle f:\mathbf {R} \to \mathbf {R} }$ and ${\displaystyle g:\mathbf {R} \to \mathbf {R} }$ be two functions, and let ${\displaystyle a\in \mathbf {R} }$. We say that ${\displaystyle f}$ is little o of ${\displaystyle g}$ near ${\displaystyle a}$ iff for every ${\displaystyle \epsilon >0}$ there exists ${\displaystyle \delta >0}$ such that ${\displaystyle |x-a|<\delta }$ implies ${\displaystyle |f(x)|<\epsilon |g(x)|}$. Some equivalent ways to say the same thing are:

Notation	Comments
${\displaystyle f}$ is little o of ${\displaystyle g}$ near ${\displaystyle a}$
${\displaystyle f(x)\in o(g(x))}$ as ${\displaystyle x\to a}$	In this notation, we think of ${\displaystyle o(g(x))}$ as a set.
${\displaystyle f(x)=o(g(x))}$ as ${\displaystyle x\to a}$
${\displaystyle f\in o(g)}$ near ${\displaystyle a}$
${\displaystyle f=o(g)}$ near ${\displaystyle a}$

Definition (little o at infinity). Let ${\displaystyle f:\mathbf {R} \to \mathbf {R} }$ and ${\displaystyle g:\mathbf {R} \to \mathbf {R} }$ be two functions. We say that ${\displaystyle f}$ is little o of ${\displaystyle g}$ at infinity iff for every ${\displaystyle \epsilon >0}$ there exists ${\displaystyle M}$ such that for all ${\displaystyle x}$, ${\displaystyle x>M}$ implies ${\displaystyle |f(x)|<\epsilon |g(x)|}$.

Exercise. Can we write just ${\displaystyle f\in o(g)}$ or ${\displaystyle f=o(g)}$ or ${\displaystyle f(x)\in o(g(x))}$ or ${\displaystyle f(x)=o(g(x))}$?

Expand to see solution:

In general we can't because for this notation to make sense, we also need to know where the argument ${\displaystyle x}$ is going. In algorithms, we have ${\displaystyle x\to \infty }$, but in analysis (e.g. in some definitions of differentiability) we have ${\displaystyle x\to 0}$.

Exercise. If we are being a little pedantic, what is wrong with saying "${\displaystyle f\in o(g)}$ as ${\displaystyle x\to a}$"?

Expand to see solution:

We are saying ${\displaystyle x\to a}$, but we haven't clarified what ${\displaystyle x}$ is. Instead, we are relying on the reader to assume that ${\displaystyle x}$ is an argument to ${\displaystyle f}$ and ${\displaystyle g}$.

Exercise. Interpret the meaning of ${\displaystyle x^{2}\in o(x)}$.

Expand to see solution:

It depends on where ${\displaystyle x}$ is going. We want ${\displaystyle |x^{2}|<\epsilon |x|}$ whenever ${\displaystyle |x-a|<\delta }$, so this is only true when ${\displaystyle a=0}$.

Properties

Proposition. Let ${\displaystyle f:\mathbf {R} \to \mathbf {R} }$ and ${\displaystyle g:\mathbf {R} \to \mathbf {R} }$ be two functions, and suppose ${\displaystyle g(x)\neq 0}$ for all ${\displaystyle x\in \mathbf {R} }$. Then f is little o of g near a if and only if ${\displaystyle \lim _{x\to a}{\frac {f(x)}{g(x)}}=0}$.

Proposition. transitivity

Proposition. we can replace the ${\displaystyle <}$ in the definition with ${\displaystyle \leq }$, right?

Exercise. Let ${\displaystyle c,x_{0}\in \mathbf {R} }$ be constants. Interpret the statement "${\displaystyle o(c(x-x_{0})+o(x-x_{0}))\in o(x-x_{0})}$ as ${\displaystyle x\to x_{0}}$".

Expand to see solution:

The statement is saying ${\displaystyle f(x)\in o(x-x_{0})}$ where ${\displaystyle f}$ is some function such that ${\displaystyle \lim _{x\to x_{0}}{\frac {f(x)}{c(x-x_{0})+o(x-x_{0})}}=0}$.

Because of the nested little o, we need to expand again and introduce ${\displaystyle g}$, where ${\displaystyle g(x)\in o(x-x_{0})}$ so ${\displaystyle \lim _{x\to x_{0}}{\frac {g(x)}{x-x_{0}}}=0}$.

Now we verify:

${\displaystyle \lim _{x\to x_{0}}{\frac {f(x)}{x-x_{0}}}=\lim {\frac {f(x)}{c(x-x_{0})+g(x)}}\lim {\frac {c(x-x_{0})+g(x)}{x-x_{0}}}=0\cdot (c+0)=0}$

References

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