Transcript Part II

Sect. 1.5: Probability Distribution for Large N
• We’ve found that, for the one-dimensional Random Walk Problem,
the probability distribution is the Binomial Distribution:
WN(n1) = [N!/(n1!n2!)]pn1qn2
• Here, q = 1 – p, n2 = N - n1
N = 20, p = q = ½
The Relative Width:
(Δ*n1)/<n1> = (q½)(pN)½
as N increases, the mean
value increases  N, & the
relative width decreases  (N)-½
• Now, imagine N getting larger & larger. Based on what we just said, the
relative width of WN(n1) gets smaller & smaller & the mean value <n1>
gets larger & larger.
• If N is VERY, VERY large, can treat W(n1) as a continuous
function of a continuous variable n1. For N large, it’s convenient to
look at the natural log ln[W(n1)] of W(n1), rather than the function itself.
• Now, do a Taylor’s series expansion of ln[W(n1)] about value of n1
where W(n1) has a maximum. Detailed math (in the text) shows that this
value of n1 is it’s average value <n1> = Np. It also shows that the width
is equal to the value of the width <(Δn1)2> = Npq.
• For ln[W(n1)], use Stirling’s Approximation (Appendix A-6) for
logs of large factorials.
Stirling’s Approximation
If n is a large integer, the natural log of it’s factorial is approximately:
ln[n!] ≈ n[ln(n) – 1]
• In this large N, large n1 limit, the Binomial Distribution W(n1)
becomes (shown in the text):
W(n1) = Ŵexp[-(n1 - <n1>)2/(2<(Δn1)2>)]
Here,
Ŵ = [2π <(Δn1)2>]-½
• This is called the Gaussian Distribution or the Normal
Distribution. We’ve found that <n1> = Np, <(Δn1)2> = Npq.
• The reasoning which led to this for large N & continuous n1 limit
started with the Binomial Distribution. However, this is a very
general result. If one starts with ANY discrete probability
distribution & takes the limit of LARGE N, one will obtain a
Gaussian or Normal Distribution. This is called
The Central Limit Theorem
or The Law of Large Numbers.
Sect. 1.6: Gaussian Probability Distributions
• In the limit of a large number of steps in the random walk,
N (>>1), the Binomial Distribution becomes a Gaussian
Distribution:
W(n1) = [2π<(Δn1)2>]-½exp[-(n1 - <n1>)2/(2<(Δn1)2>)]
<n1> = Np, <(Δn1)2> = Npq
• Recall that n1 = ½(N + m), where the displacement x = mℓ & that
<m> = N(p – q). We can use this to convert to the probability
distribution for displacement m, in the large N limit (after algebra):
P(m) = [2π<(Δm)2>]-½exp[-(m - <m>)2/(2<(Δm)2>)]
<m> = N(p – q), <(Δm)2> = 4Npq
P(m) = [2πNpq]-½exp[-(m – N{p – q})2/(8Npq)]
We can express this in terms of x = mℓ. As
N  >> 1, x can be treated as continuous.
In this case, |P(m+2) – P(m)| << P(m)
 & discrete values of P(m) get closer &
closer together.
Now, lets ask: What is the probability that, after N steps, the particle
is in the range x to x + dx? The probability distribution for this
≡ P(x). Then, we have:
P(x)dx = (½)P(m)(dx/ℓ)
The range dx contains (½)(dx/ℓ) possible values of m, since
the smallest possible dx is dx = 2ℓ.
• After some math, we obtain the standard Gaussian Distribution form:
P(x)dx = (2π)-½σ-1exp[-(x – μ)2/2σ2]
Here:
μ ≡ N(p – q)ℓ ≡ mean value of x
σ ≡ 2ℓ(Npq)-½ ≡ width of the distribution
NOTE: The generality of
the arguments we’ve used is
such that a Gaussian
distribution occurs
in the limit of large
numbers for any
discrete distribution
P(x)dx = (2π)-½σ-1exp[-(x – μ)2/2σ2]
μ ≡ N(p – q)ℓ σ ≡ 2ℓ(Npq)-½
• Note: To deal with Gaussian distributions, you need to get
used to doing integrals with them! Many of these are tabulated!!
• Is P(x) properly normalized? That is, does
P(x)dx = 1?
(limits -  < x < )
P(x)dx = (2π)-½σ-1exp[-(x – μ)2/2σ2]dx
= (2π)-½σ-1exp[-y2/2σ2]dy (y = x – μ)
= (2π)-½σ-1 [(2π)½σ] (from a table)
P(x)dx = 1
P(x)dx = (2π)-½σ-1exp[-(x – μ)2/2σ2]
μ ≡ N(p – q)ℓ
σ ≡ 2ℓ(Npq)-½
• Compute the mean value of x (<x>):
<x> = xP(x)dx =
(limits -  < x < )
xP(x)dx = (2π)-½σ-1xexp[-(x – μ)2/2σ2]dx
= (2π)-½σ-(y + μ)exp[-y2/2σ2]dy (y = x – μ)
= (2π)-½σ-1yexp[-y2/2σ2]dy + μ exp[-y2/2σ2]dy
yexp[-y2/2σ2]dy = 0 (odd function times even function)
exp[-y2/2σ2]dy = [(2π)½σ] (from a table)
<x> = μ ≡ N(p – q)ℓ
P(x)dx = (2π)-½σ-1exp[-(x – μ)2/2σ2]
μ ≡ N(p – q)ℓ
σ ≡ 2ℓ(Npq)-½
• Compute the dispersion in x (<(Δx)2>)
<(Δx)2> = <(x – μ)2> = (x – μ)2P(x)dx = (limits -  < x < )
xP(x)dx = (2π)-½σ-1xexp[-(x – μ)2/2σ2]dx
= (2π)-½σ-1y2exp[-y2/2σ2]dy (y = x – μ)
= (2π)-½σ-1(½)(π)½σ(2σ2)1.5
<(Δx)2> = σ2 = 4Npqℓ2
(from table)
0.25
Comparison of Binomial & Gaussian Distributions
0.00
0.05
0.10
fx
0.15
0.20
Dots: Binomial
Curve: Gaussian
The same mean &
the same width
0
2
4
6
x
8
10
The width of a Gaussian is 2σ
2σ
Areas under portions of a Gaussian
Sect. 1.7: Probability Distributions
Involving Several Variables
• Consider a statistical description of a situation with
more than one variable: For example, 2 variables, u, v
The possible values of u are:
u1,u2,u3,…uM
The possible values of v are:
v1,v2,v3,…vM
Let P(ui,vj) ≡ Probability that u = ui, & v = vj simultaneously
•
We must have:
∑
i = 1 M
∑
j = 1 N
P(ui,vj) = 1
• Pu(ui) ≡ Probability that u = ui independent of value v = vj
Pu(ui) ≡
∑
j = 1 N
P(ui,vj)
• Pv(vj) ≡ Probability that v = vj independent of value u = ui
Pv(vj) ≡ ∑
i = 1 M
• Of course, ∑
i = 1 M
P(ui,vj)
Pu(ui) = 1 & ∑
j = 1 N
Pv(vj) = 1
• In the special case that u, v are
Statistically Independent or Uncorrelated:
P(ui,vj) ≡ Pu(ui)Pv(vj)
Then & only then:
General Discussion of Mean Values:
• If F(u,v) = any function of u,v, it’s mean value is given by:
<F(u,v)> ≡ ∑
i = 1 M
∑
j = 1 N
P(ui,vj)F(ui,vj)
• If F(u,v) & G(u,v) are any 2 functions of u,v, can easily show:
<F(u,v) + G(u,v)> = <F(u,v)> + <G(u,v)>
• If f(u) is any function of u & g(v)> is any function of v, we can
easily show:
<f(u)g(v)> ≠ <f(u)><g(v)>
The only case when the inequality becomes an equality is if u & v are
statistically independent.
Sect. 1.8: Comments on Continuous
Probability Distributions
• Everything we’ve discussed for discrete distributions generalizes in
obvious ways.
• u ≡ a continuous random variable in the range:
a1 ≤ u ≤ a2
• The probability of finding u in the range u to u + du ≡
P(u) ≡ P(u)du
P(u) ≡ Probability Density of the distribution function
• Normalization: P(u)du = 1
(limits a1 ≤ u ≤ a2)
• Mean values: <F(u)> ≡ F(u)P(u)du.
• Consider two continuous random variables:
u ≡ continuous random variable in range: a1 ≤ u ≤ a2
v ≡ continuous random variable in range: b1 ≤ v ≤ b2
• The probability of finding u in the range u to u + du
AND v in the range v to v + dv is
P(u,v) ≡ P(u,v)dudv
P(u,v) ≡ Probability Density of the distribution function
• Normalization: P(u,v)dudv = 1 (limits a1 ≤ u ≤ a2, b1 ≤ v
• Mean values: <G(u,v)> ≡ G(u,v)P(u,v)dudv
≤ b2)
Functions of Random Variables
An important, often occurring problem:
Consider a random variable u.
Suppose φ(u) ≡ any continuous function of u.
Question: If P(u)du ≡ Probability of finding u in the
range u to u + du, what is the probability
W(φ)dφ of finding φ in the range φ to φ + dφ?
• Answer by using essentially the “Chain Rule” of
differentiation, but take the absolute value to make sure that W ≥ 0:
W(φ)dφ ≡ P(u)|du/dφ|dφ
Caution!! φ(u) may not be a single valued function of u!
• Example: A 2-dimensional vector B of constant magnitude |B| is
EQUALLY LIKELY to point in any direction θ in the x-y plane.
Figures 
Equally Likely 
The probability of
finding θ between θ
& θ + dθ is:
P(θ)dθ ≡ (dθ/2π)
Question:
What is the probability W(Bx)dBx that the x component of B
lies between Bx & Bx + dBx? Clearly, we must have –B ≤ Bx ≤ B.
Also, each value of dBx corresponds to 2 possible values of dθ.
Also, dBx = |Bsinθ|dθ
• So, we have:
W(Bx)dBx = 2P(θ)|dθ/dBx|dBx = (π)-1dBx/|Bsinθ|
Note also that: |sinθ| = [1 – cos2θ]½ = [1 – (Bx)2/B2]½ so finally,
W(Bx)dBx = (π)-1dBx[1 – (Bx)2/B2]-½, –B ≤ Bx ≤ B
= 0, otherwise
W not only has a maximum
at Bx = B, it diverges there!
It has a minimum at Bx = 0.
So, it looks like

W diverges at Bx = B, but it
can be shown that it’s integral
is finite. So, that W(Bx) is a proper probability:
W(Bx)dBx= 1
(limits: –B ≤ Bx ≤ B)
The Poisson Probability Distribution
Simeon Denis Poisson
• "Researches on the probability of
criminal and civil verdicts" 1837
• Looked at the form of the binomial
distribution
when the number of trials is large.
• He derived the cumulative Poisson
distribution as the
limiting case of the binomial when
the chance of success tends to zero.
The Poisson Probability Distribution
• "Researches on the probability of Simeon Denis Poisson
criminal and civil verdicts" 1837
• Looked at the form of the
binomial distribution
when the number of trials is large.
• He derived the cumulative
Poisson distribution as the
limiting case of the binomial
whenthe chance of success
tends to zero.
Simeon Denis “Fish”!
Another Useful Probability Distribution:
The Poisson Distribution
• Poisson Distribution: Approximation to binomial distribution for
the special case when the average number of successes is very
much smaller than the possible number
i.e. µ << n because p << 1.
– It is important for the study of such phenomena as radioactive decay.
This distribution is NOT necessarily symmetric! Data are usually
bounded on one side and not the other. An advantage of this
distribution is that
σ2 = μ
µ = 1.67
σ = 1.29
µ = 10.0
σ = 3.16
• The Poisson Distribution models counts: If events
happen at a constant rate over time, the Poisson distribution
gives the probability of X number of events occurring in a time T.
• This distribution tells us the
probability of all possible numbers of counts, from 0 to infinity.
• If X= # of counts per second, then the Poisson probability that
X = k (a particular count) is:
p( X  k ) 
k 
e
k!
• Here, λ ≡ the average number of counts per second.
Mean and Variance for the Poisson Distribution
• It’s easy to show that:
The Mean   
The Variance &  2
Standard Deviation

 
For a Poisson Distribution,
the variance and mean are the same!
More on the Poisson Distribution
Terminology: A “Poisson Process”
• The Poisson parameter  can be given as the mean number
of events that occur in a defined time period OR,
equivalently,  can be given as a rate, such as  = 2 events
per month.  must often be multiplied by a time t in a
physical process (called a “Poisson Process”)
(t ) e
P( X  k ) 
k!
k
μ = t
 t
σ = t
Example
1. If calls to your cell phone are a Poisson process with a
constant rate  = 2 calls per hour, what is the probability
that, if you forget to turn your phone off in a 1.5 hour
movie, your phone rings during that time?
Answer: If X = # calls in 1.5 hours, we want
P(X ≥ 1) = 1 – P(X = 0)
(2 * 1.5) 0 e 2(1.5) (3) 0 e 3
P( X  0) 
 e 3  .05
0!
0!
P(X ≥ 1) = 1 – .05 = 95% chance
2. How many phone calls do you expect to get during the movie?
<X> = t = 2(1.5) = 3
Editorial comment:
People at the movie will not be very happy with you!!
Conditions required for the
Poisson Distribution to hold:
– The rate is a constant, independent of time.
– Two events never occur at exactly the same time.
– Each event is independent --- the occurrence
of one event does not make the next event
more or less likely to happen.
31
Example
• A production line produces 600 parts per hour with an
average of 5 defective parts an hour. If you test every part
that comes off the line in 15 minutes, what is the probability
of finding no defective parts (and incorrectly concluding that
your process is perfect)?
 = (5 defects/hour)*(0.25 hour)
= 1.25
p(x) = (xe-)/(x!)
x = given number of defects
P(x = 0) = (1.25)0e-1.25)/(0!)
= e-1.25 = 0.287
= 28.7%