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In the previous section we discussed in some detail the Law of Large Numbers
for discrete probability distributions.  This law has a natural analogue for
continuous probability distributions, which we consider somewhat more briefly
here.
==Chebyshev Inequality==
Just as in the discrete case, we begin our discussion with the Chebyshev
Inequality.
{{proofcard|Theorem|theorem-1|''' (Chebyshev Inequality)'''
Let <math>X</math> be a continuous random variable with density function <math>f(x)</math>.  Suppose <math>X</math> has a
finite expected value <math>\mu = E(X)</math> and finite variance <math>\sigma^2 = V(X)</math>.  Then for any
positive number <math>\epsilon  >  0</math> we have
<math display="block">
P(|X - \mu| \geq \epsilon) \leq \frac {\sigma^2}{\epsilon^2}\ .
</math>|}}
The proof is completely analogous to the proof in the discrete case, and we omit it.
{{alert-info|Note that this theorem says nothing if <math>\sigma^2 = V(X)</math> is infinite.}}
'''Example'''
Let <math>X</math> be any continuous random variable with <math>E(X) = \mu</math> and <math>V(X) =
\sigma^2</math>.  Then, if <math>\epsilon = k\sigma = k</math> standard deviations
for some integer <math>k</math>, then
<math display="block">
P(|X - \mu| \geq k\sigma) \leq \frac {\sigma^2}{k^2\sigma^2} = \frac 1{k^2}\ ,
</math>
just as in the discrete case.
===Law of Large Numbers===
With the Chebyshev Inequality we can now state and prove the Law of Large
Numbers for the continuous case.
{{proofcard|Theorem|theorem-2|''' (Law of Large Numbers)'''
Let <math>X_1</math>, <math>X_2</math>, \dots, <math>X_n</math> be an independent trials process with a
continuous density function <math>f</math>, finite expected value <math>\mu</math>, and finite
variance <math>\sigma^2</math>.  Let <math>S_n = X_1 + X_2 +\cdots+ X_n</math> be the sum of the
<math>X_i</math>.  Then for any real number <math>\epsilon  >  0</math> we have
<math display="block">
\lim_{n \to \infty} P\left( \left| \frac {S_n}n - \mu \right| \geq \epsilon
\right) = 0\ ,
</math>
or equivalently,
<math display="block">
\lim_{n \to \infty} P\left( \left| \frac {S_n}n - \mu \right|  <  \epsilon
\right) = 1\ .
</math>|}}
Note that this theorem is not necessarily true if <math>\sigma^2</math> is infinite
(see [[#exam 8.2.5 |Example]]).
As in the discrete case, the Law of Large Numbers says that the average value
of <math>n</math> independent trials tends to the expected value as <math>n \to \infty</math>, in the
precise sense that, given <math>\epsilon  >  0</math>, the probability that the average
value and the expected value differ by more than <math>\epsilon</math> tends to 0 as <math>n
\to \infty</math>.
Once again, we suppress the proof, as it is identical to the proof in the discrete case.
===Uniform Case===
'''Example'''
Suppose we choose at random <math>n</math> numbers from the interval <math>[0,1]</math> with
uniform distribution.  Then if <math>X_i</math> describes the <math>i</math>th choice, we have
<math display="block">
\begin{eqnarray*}
        \mu & = & E(X_i) = \int_0^1 x\, dx = \frac 12\ , \\
    \sigma^2 & = & V(X_i) = \int_0^1 x^2\, dx - \mu^2 \\
            & = & \frac 13 - \frac 14 = \frac 1{12}\ .
\end{eqnarray*}
</math>
Hence,
<math display="block">
\begin{eqnarray*}
E \left( \frac {S_n}n \right)  & = & \frac 12\ , \\
V \left( \frac {S_n}n \right)  & = & \frac 1{12n}\ ,
\end{eqnarray*}
</math>
and for any <math>\epsilon  >  0</math>,
<math display="block">
P \left( \left| \frac {S_n}n - \frac 12 \right| \geq \epsilon \right) \leq \frac
1{12n \epsilon^2}\ .
</math>
This says that if we choose <math>n</math> numbers at random from <math>[0,1]</math>, then the
chances are better than <math>1 - 1/(12n\epsilon^2)</math> that the difference <math>|S_n/n -
1/2|</math> is less than <math>\epsilon</math>.  Note that <math>\epsilon</math> plays the role of the
amount of error we are willing to tolerate: If we choose <math>\epsilon = 0.1</math>, say,
then the chances that <math>|S_n/n - 1/2|</math> is less than 0.1 are better than <math>1 -
100/(12n)</math>.  For <math>n = 100</math>, this is about .92, but if <math>n = 1000</math>, this is better
than .99 and if <math>n = 10,00</math>, this is better than .999.
<div id="fig 8.2" class="d-flex justify-content-center">
[[File:guide_e6d15_PSfig8-2.png | 600px | thumb |Illustration of Law of Large Numbers --- uniform case. ]]
</div>
We can illustrate what the Law of Large Numbers says for this example
graphically.  The density for <math>A_n = S_n/n</math> is determined by
<math display="block">
f_{A_n}(x) = nf_{S_n}(nx)\ .
</math>
We have seen in Section \ref{sec 7.2}, that we can compute the density
<math>f_{S_n}(x)</math> for the sum of <math>n</math> uniform random variables.  In [[#fig 8.2|Figure]] we have
used this to plot the density for <math>A_n</math> for various values of <math>n</math>.  We have
shaded in the area for which <math>A_n</math> would lie between .45 and .55.  We see that as
we increase <math>n</math>, we obtain more and more of the total area inside the shaded
region.  The Law of Large Numbers tells us that we can obtain as much of the
total area as we please inside the shaded region by choosing <math>n</math> large enough
(see also [[#fig 8.1|Figure]]).
===Normal Case===
'''Example'''
Suppose we choose <math>n</math> real numbers at random,
using a normal distribution with mean 0 and variance 1.  Then
<math display="block">
\begin{eqnarray*}
        \mu &=& E(X_i) = 0\ , \\
  \sigma^2 &=& V(X_i) = 1\ .
\end{eqnarray*}
</math>
Hence,
<math display="block">
\begin{eqnarray*}
E \left( \frac {S_n}n \right) &=& 0\ , \\
V \left( \frac {S_n}n \right) &=& \frac 1n\ ,
\end{eqnarray*}
</math>
and, for any <math>\epsilon  >  0</math>,
<math display="block">
P\left( \left| \frac {S_n}n - 0 \right| \geq \epsilon \right) \leq \frac
1{n\epsilon^2}\ .
</math>
In this case it is possible to compare the Chebyshev estimate for <math>P(|S_n/n -
\mu| \geq \epsilon)</math> in the Law of Large Numbers with exact values, since we
know the density function for <math>S_n/n</math> exactly (see [[guide:Ec62e49ef0#exam 7.12 |Example]]).
The comparison is shown in [[#table 8.1 |Table]], for <math>\epsilon = .1</math>.  The data
in this table was produced by the program ''' LawContinuous'''.
<span id="table 8.1"/>
{|class="table"
|+ Chebyshev estimates.
|-
|<math>n</math> || <math>P(|S_n/n| \ge .1)</math> || Chebyshev
|-
|100 || .31731 || 1.00000
|-
|200 || .15730 || .50000
|-
|300 || .08326 || .33333
|-
|400 || .04550 || .25000
|-
|500 || .02535 || .20000
|-
|600 || .01431 || .16667
|-
|700 || .00815 || .14286
|-
|800 || .00468 || .12500
|-
|900 || .00270 || .11111
|-
|1000 || .00157 || .10000
|}
We see here that the Chebyshev estimates are in general ''not'' very
accurate.
===Monte Carlo Method===
Here is a somewhat more interesting example.
'''Example'''
Let <math>g(x)</math> be a continuous function defined for <math>x \in [0,1]</math> with values in
<math>[0,1]</math>.  In [[guide:A070937c41|Simulation of Continuous Probabilities]], we showed how to estimate the area of
the region under the graph of <math>g(x)</math> by the Monte Carlo method, that is, by
choosing a large number of random values for <math>x</math> and <math>y</math> with uniform
distribution and seeing what fraction of the points <math>P(x,y)</math> fell inside the
region under the graph (see [[guide:A070937c41#exam 2.1.2 |Example]]).
Here is a better way to estimate the same area (see [[#fig 8.3|Figure]]).  Let us choose a
large number of independent values <math>X_n</math> at random from <math>[0,1]</math> with uniform
density, set <math>Y_n = g(X_n)</math>, and find the average value of the <math>Y_n</math>.  Then
this average is our estimate for the area.  To see this, note that if the
density function for <math>X_n</math> is uniform,
<math display="block">
\begin{eqnarray*}
\mu & = & E(Y_n) = \int_0^1 g(x) f(x)\, dx \\
  & = & \int_0^1 g(x)\, dx \\
  & = & \mbox {average\ value\ of\ }  g(x)\ ,
\end{eqnarray*}
</math>
while the variance is
<math display="block">
\sigma^2 = E((Y_n - \mu)^2) = \int_0^1 (g(x) - \mu)^2\, dx  <  1\ ,
</math>
since for all <math>x</math> in <math>[0, 1]</math>, <math>g(x)</math> is in <math>[0, 1]</math>, hence <math>\mu</math> is in <math>[0, 1]</math>, and
so <math>|g(x) - \mu| \le 1</math>.  Now let <math>A_n = (1/n)(Y_1 + Y_2 +\cdots+ Y_n)</math>.  Then by Chebyshev's
Inequality, we have
<math display="block">
P(|A_n - \mu| \geq \epsilon) \leq \frac {\sigma^2}{n\epsilon^2}  <  \frac
1{n\epsilon^2}\ .
</math>
<div id="fig 8.3" class="d-flex justify-content-center">
[[File:guide_e6d15_PSfig8-3.png | 400px | thumb | Area problem. ]]
</div>
This says that to get within <math>\epsilon</math> of the true value for <math>\mu = \int_0^1
g(x)\, dx</math> with probability at least <math>p</math>, we should choose <math>n</math> so that
<math>1/n\epsilon^2 \leq 1 - p</math> (i.e., so that <math>n \geq 1/\epsilon^2(1 - p)</math>).  Note
that this method tells us how large to take <math>n</math> to get a desired accuracy.
The Law of Large Numbers requires that the variance <math>\sigma^2</math> of the original
underlying density be finite: <math>\sigma^2  <  \infty</math>.  In cases where this fails
to hold, the Law of Large Numbers may fail, too.  An example follows.
===Cauchy Case===
<span id="exam 8.2.5"/>
'''Example'''
Suppose we choose <math>n</math> numbers from <math>(-\infty,+\infty)</math> with a Cauchy density
with parameter <math>a = 1</math>.  We know that for the Cauchy density the expected value
and variance are undefined (see [[guide:E5be6e0c81#exam 6.23 |Example]]).  In this case, the
density function for
<math display="block">
A_n = \frac {S_n}n
</math>
is given by (see [[guide:Ec62e49ef0#exam 7.9 |Example]])
<math display="block">
f_{A_n}(x) = \frac 1{\pi(1 + x^2)}\ ,
</math>
that is, ''the density function for <math>A_n</math> is the same for all <math>n</math>.''  In this
case, as <math>n</math> increases, the density function does not change at all, and the
Law of Large Numbers does not hold.
==General references==
{{cite web |url=https://math.dartmouth.edu/~prob/prob/prob.pdf |title=Grinstead and Snell’s Introduction to Probability |last=Doyle |first=Peter G.|date=2006 |access-date=June 6, 2024}}

Latest revision as of 02:39, 11 June 2024

[math] \newcommand{\NA}{{\rm NA}} \newcommand{\mat}[1]{{\bf#1}} \newcommand{\exref}[1]{\ref{##1}} \newcommand{\secstoprocess}{\all} \newcommand{\NA}{{\rm NA}} \newcommand{\mathds}{\mathbb}[/math]

In the previous section we discussed in some detail the Law of Large Numbers for discrete probability distributions. This law has a natural analogue for continuous probability distributions, which we consider somewhat more briefly here.

Chebyshev Inequality

Just as in the discrete case, we begin our discussion with the Chebyshev Inequality.

Theorem

(Chebyshev Inequality) Let [math]X[/math] be a continuous random variable with density function [math]f(x)[/math]. Suppose [math]X[/math] has a finite expected value [math]\mu = E(X)[/math] and finite variance [math]\sigma^2 = V(X)[/math]. Then for any positive number [math]\epsilon \gt 0[/math] we have

[[math]] P(|X - \mu| \geq \epsilon) \leq \frac {\sigma^2}{\epsilon^2}\ . [[/math]]

The proof is completely analogous to the proof in the discrete case, and we omit it.

Note that this theorem says nothing if [math]\sigma^2 = V(X)[/math] is infinite.

Example Let [math]X[/math] be any continuous random variable with [math]E(X) = \mu[/math] and [math]V(X) = \sigma^2[/math]. Then, if [math]\epsilon = k\sigma = k[/math] standard deviations for some integer [math]k[/math], then

[[math]] P(|X - \mu| \geq k\sigma) \leq \frac {\sigma^2}{k^2\sigma^2} = \frac 1{k^2}\ , [[/math]]

just as in the discrete case.


Law of Large Numbers

With the Chebyshev Inequality we can now state and prove the Law of Large Numbers for the continuous case.

Theorem

(Law of Large Numbers) Let [math]X_1[/math], [math]X_2[/math], \dots, [math]X_n[/math] be an independent trials process with a continuous density function [math]f[/math], finite expected value [math]\mu[/math], and finite variance [math]\sigma^2[/math]. Let [math]S_n = X_1 + X_2 +\cdots+ X_n[/math] be the sum of the [math]X_i[/math]. Then for any real number [math]\epsilon \gt 0[/math] we have

[[math]] \lim_{n \to \infty} P\left( \left| \frac {S_n}n - \mu \right| \geq \epsilon \right) = 0\ , [[/math]]
or equivalently,

[[math]] \lim_{n \to \infty} P\left( \left| \frac {S_n}n - \mu \right| \lt \epsilon \right) = 1\ . [[/math]]

Note that this theorem is not necessarily true if [math]\sigma^2[/math] is infinite (see Example). As in the discrete case, the Law of Large Numbers says that the average value of [math]n[/math] independent trials tends to the expected value as [math]n \to \infty[/math], in the precise sense that, given [math]\epsilon \gt 0[/math], the probability that the average value and the expected value differ by more than [math]\epsilon[/math] tends to 0 as [math]n \to \infty[/math]. Once again, we suppress the proof, as it is identical to the proof in the discrete case.

Uniform Case

Example Suppose we choose at random [math]n[/math] numbers from the interval [math][0,1][/math] with uniform distribution. Then if [math]X_i[/math] describes the [math]i[/math]th choice, we have

[[math]] \begin{eqnarray*} \mu & = & E(X_i) = \int_0^1 x\, dx = \frac 12\ , \\ \sigma^2 & = & V(X_i) = \int_0^1 x^2\, dx - \mu^2 \\ & = & \frac 13 - \frac 14 = \frac 1{12}\ . \end{eqnarray*} [[/math]]

Hence,

[[math]] \begin{eqnarray*} E \left( \frac {S_n}n \right) & = & \frac 12\ , \\ V \left( \frac {S_n}n \right) & = & \frac 1{12n}\ , \end{eqnarray*} [[/math]]

and for any [math]\epsilon \gt 0[/math],

[[math]] P \left( \left| \frac {S_n}n - \frac 12 \right| \geq \epsilon \right) \leq \frac 1{12n \epsilon^2}\ . [[/math]]

This says that if we choose [math]n[/math] numbers at random from [math][0,1][/math], then the chances are better than [math]1 - 1/(12n\epsilon^2)[/math] that the difference [math]|S_n/n - 1/2|[/math] is less than [math]\epsilon[/math]. Note that [math]\epsilon[/math] plays the role of the amount of error we are willing to tolerate: If we choose [math]\epsilon = 0.1[/math], say, then the chances that [math]|S_n/n - 1/2|[/math] is less than 0.1 are better than [math]1 - 100/(12n)[/math]. For [math]n = 100[/math], this is about .92, but if [math]n = 1000[/math], this is better than .99 and if [math]n = 10,00[/math], this is better than .999.

Illustration of Law of Large Numbers --- uniform case.

We can illustrate what the Law of Large Numbers says for this example graphically. The density for [math]A_n = S_n/n[/math] is determined by

[[math]] f_{A_n}(x) = nf_{S_n}(nx)\ . [[/math]]

We have seen in Section \ref{sec 7.2}, that we can compute the density [math]f_{S_n}(x)[/math] for the sum of [math]n[/math] uniform random variables. In Figure we have used this to plot the density for [math]A_n[/math] for various values of [math]n[/math]. We have shaded in the area for which [math]A_n[/math] would lie between .45 and .55. We see that as we increase [math]n[/math], we obtain more and more of the total area inside the shaded region. The Law of Large Numbers tells us that we can obtain as much of the total area as we please inside the shaded region by choosing [math]n[/math] large enough (see also Figure).


Normal Case

Example Suppose we choose [math]n[/math] real numbers at random, using a normal distribution with mean 0 and variance 1. Then

[[math]] \begin{eqnarray*} \mu &=& E(X_i) = 0\ , \\ \sigma^2 &=& V(X_i) = 1\ . \end{eqnarray*} [[/math]]

Hence,

[[math]] \begin{eqnarray*} E \left( \frac {S_n}n \right) &=& 0\ , \\ V \left( \frac {S_n}n \right) &=& \frac 1n\ , \end{eqnarray*} [[/math]]

and, for any [math]\epsilon \gt 0[/math],

[[math]] P\left( \left| \frac {S_n}n - 0 \right| \geq \epsilon \right) \leq \frac 1{n\epsilon^2}\ . [[/math]]

In this case it is possible to compare the Chebyshev estimate for [math]P(|S_n/n - \mu| \geq \epsilon)[/math] in the Law of Large Numbers with exact values, since we know the density function for [math]S_n/n[/math] exactly (see Example). The comparison is shown in Table, for [math]\epsilon = .1[/math]. The data in this table was produced by the program LawContinuous.

Chebyshev estimates.
[math]n[/math] [math]P(|S_n/n| \ge .1)[/math] Chebyshev
100 .31731 1.00000
200 .15730 .50000
300 .08326 .33333
400 .04550 .25000
500 .02535 .20000
600 .01431 .16667
700 .00815 .14286
800 .00468 .12500
900 .00270 .11111
1000 .00157 .10000

We see here that the Chebyshev estimates are in general not very accurate.


Monte Carlo Method

Here is a somewhat more interesting example. Example Let [math]g(x)[/math] be a continuous function defined for [math]x \in [0,1][/math] with values in [math][0,1][/math]. In Simulation of Continuous Probabilities, we showed how to estimate the area of the region under the graph of [math]g(x)[/math] by the Monte Carlo method, that is, by choosing a large number of random values for [math]x[/math] and [math]y[/math] with uniform distribution and seeing what fraction of the points [math]P(x,y)[/math] fell inside the region under the graph (see Example).


Here is a better way to estimate the same area (see Figure). Let us choose a large number of independent values [math]X_n[/math] at random from [math][0,1][/math] with uniform density, set [math]Y_n = g(X_n)[/math], and find the average value of the [math]Y_n[/math]. Then this average is our estimate for the area. To see this, note that if the density function for [math]X_n[/math] is uniform,

[[math]] \begin{eqnarray*} \mu & = & E(Y_n) = \int_0^1 g(x) f(x)\, dx \\ & = & \int_0^1 g(x)\, dx \\ & = & \mbox {average\ value\ of\ } g(x)\ , \end{eqnarray*} [[/math]]
while the variance is

[[math]] \sigma^2 = E((Y_n - \mu)^2) = \int_0^1 (g(x) - \mu)^2\, dx \lt 1\ , [[/math]]
since for all [math]x[/math] in [math][0, 1][/math], [math]g(x)[/math] is in [math][0, 1][/math], hence [math]\mu[/math] is in [math][0, 1][/math], and so [math]|g(x) - \mu| \le 1[/math]. Now let [math]A_n = (1/n)(Y_1 + Y_2 +\cdots+ Y_n)[/math]. Then by Chebyshev's Inequality, we have

[[math]] P(|A_n - \mu| \geq \epsilon) \leq \frac {\sigma^2}{n\epsilon^2} \lt \frac 1{n\epsilon^2}\ . [[/math]]

Area problem.

This says that to get within [math]\epsilon[/math] of the true value for [math]\mu = \int_0^1 g(x)\, dx[/math] with probability at least [math]p[/math], we should choose [math]n[/math] so that [math]1/n\epsilon^2 \leq 1 - p[/math] (i.e., so that [math]n \geq 1/\epsilon^2(1 - p)[/math]). Note that this method tells us how large to take [math]n[/math] to get a desired accuracy.

The Law of Large Numbers requires that the variance [math]\sigma^2[/math] of the original underlying density be finite: [math]\sigma^2 \lt \infty[/math]. In cases where this fails to hold, the Law of Large Numbers may fail, too. An example follows.

Cauchy Case

Example Suppose we choose [math]n[/math] numbers from [math](-\infty,+\infty)[/math] with a Cauchy density with parameter [math]a = 1[/math]. We know that for the Cauchy density the expected value and variance are undefined (see Example). In this case, the density function for

[[math]] A_n = \frac {S_n}n [[/math]]
is given by (see Example)

[[math]] f_{A_n}(x) = \frac 1{\pi(1 + x^2)}\ , [[/math]]
that is, the density function for [math]A_n[/math] is the same for all [math]n[/math]. In this case, as [math]n[/math] increases, the density function does not change at all, and the Law of Large Numbers does not hold.

General references

Doyle, Peter G. (2006). "Grinstead and Snell's Introduction to Probability" (PDF). Retrieved June 6, 2024.