Probability and Statistics for Engineering and the Sciences
Probability and Statistics for Engineering and the Sciences
9th Edition
ISBN: 9781305251809
Author: Jay L. Devore
Publisher: Cengage Learning
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Textbook Question
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Chapter 3.6, Problem 93E
  1. a. In a Poisson process, what has to happen in both the time interval (0, t) and the interval (t, t + Δt) so that no events occur in the entire interval (0, t + Δt)? Use this and Assumptions 1-3 to write a relationship between P0(t + Δt) and P0(t).
  2. b. Use the result of part (a) to write an expression for the difference P0(t + Δt) − P0(t). Then divide by Δt and let Δt → 0 to obtain an equation involving (d/dt)P0(t), the derivative of P0(t) with respect to t.
  3. c. Verify that P0(t) = e−αt satisfies the equation of part (b).
  4. d. It can be shown in a manner similar to parts (a) and (b) that the Pk(t)s must satisfy the system of differential equations

    d d t P k ( t ) = α P k 1 ( t )  -  α P k ( t ) k = 1 ,  2, 3, ...

    Verify that Pk(t) = e−αtt)k/k! satisfies the system. (This is actually the only solution.)

a.

Expert Solution
Check Mark
To determine

Find what will happen in both of the intervals (0, t) and (t,t+Δt) if no events occur in the interval (0,t+Δt)

Find the relationship between P0(t+Δt) and P0(t).

Answer to Problem 93E

The relationship between P0(t+Δt) and P0(t) is P0(t+Δt)=P0(t)×{1α×Δto(Δt)}

Explanation of Solution

Given info:

In a Poisson process no events occur in the interval (0,t+Δt).

Calculation:

It is clear that no events occur in the interval (0,t+Δt) if no event occur in the interval (0, t) and no event occur in the interval (t,t+Δt).

The assumptions of Poisson process:

  1. 1. There exists a parameter α>0 such that for any short time interval of length Δt , the probability that exactly one event occurs is α×Δt+o(Δt)
  2. 2. The probability of more than one event occurring during Δt is o(Δt) [the probability of no events during (Δt) is 1α×Δto(Δt) ]
  3. 3. The number of events occurring during the time interval Δt is independent of the number that occur prior to this time interval.

Hence, using the 3rd assumption,

P0(t+Δt)=P(no events occur in the interval(0,t+Δt))=P(no events occur in the interval(0,t))×P(no events occur in the interval(t,t+Δt))=P0(t)×P(no events occur in the interval(t,t+Δt))

From the second assumption,

P(no events occur in the interval(t,t+Δt))=1α×Δto(Δt)

Hence, P0(t+Δt)=P0(t)×{1α×Δto(Δt)}.

b.

Expert Solution
Check Mark
To determine

Find the expression of P0(t+Δt)P0(t) from part a.

Find the equation involving (ddt)P0(t).

Answer to Problem 93E

The expression is P0(t+Δt)P0(t)=P0(t){α×Δt+o(Δt)}.

The equation is dP0(t)dt=αP0(t).

Explanation of Solution

Calculation:

From part a,

P0(t+Δt)=P0(t)×{1α×Δto(Δt)}=P0(t)P0(t){α×Δt+o(Δt)}P0(t+Δt)P0(t)=P0(t){α×Δt+o(Δt)}

Dividing both side of P0(t+Δt)P0(t)=P0(t){α×Δt+o(Δt)} by Δt, it can be found that,

P0(t+Δt)P0(t)Δt=P0(t){α×Δt+o(Δt)}Δt=P0(t)×α×ΔtΔto(Δt)Δt

It is known that o(Δt)Δt0, when Δt0 

Hence, P0(t+Δt)P0(t)Δt=P0(t)×α

It is known that f(t+Δt)f(t)Δt=df(t)dt

Using this formula,

P0(t+Δt)P0(t)Δt=P0(t)×αdP0(t)dt=αP0(t)

Hence, the equation is dP0(t)dt=αP0(t).

c.

Expert Solution
Check Mark
To determine

Check whether P0(t)=eαt satisfies the equation of the part b.

Answer to Problem 93E

The equation is satisfied.

Explanation of Solution

Calculation:

According to part b the equation involving (ddt)P0(t) is dP0(t)dt=αP0(t).

Putting P0(t)=eαt,

dP0(t)dt=ddt(eαt)=αeαt=αP0(t)

Hence, the equation is satisfied.

d.

Expert Solution
Check Mark
To determine

Verify whether Pk(t)=eαt(αt)kk! satisfies the system.

Answer to Problem 93E

Pk(t)=eαt(αt)kk! satisfies the system.

Explanation of Solution

Given info:

ddtPk(t)=αPk1(t)αPk(t),k=1,2...3

Calculation:

Putting Pk(t)=eαt(αt)kk!,

ddtPk(t)=ddt{eαt(αt)kk!}=αkk!×ddt{eαt(t)k}=αkk!×{eαtk(t)k1+(t)keαt(α)}=eαtαk(t)k1(k1)!αeαt(αt)kk!

=αeαt(αt)k1(k1)!αeαt(αt)kk!=αPk1(t)αPk(t)

Hence, Pk(t)=eαt(αt)kk! satisfies the system.

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Chapter 3 Solutions

Probability and Statistics for Engineering and the Sciences

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