The conditions are very similar of the given data.

Question

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Answer 1

Question

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

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Answer 2

Question

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 3

Question

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 4

Question

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 5

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

Answer 6

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

Answer 7

Chapter 22, Problem 22.12AYK

(a)

To determine

To explain:

The conditions are very similar of the given data.

Answer 8

(a)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

p=xn

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= sample proportion

The best point of estimate of p is sample proportion

Since the sample size are large.

The condition for the two samples z test are met.

To met chi square test, the population distribution is normal.

p=xn

Answer 9

(a)

Expert Solution

Answer 10

(a)

Expert Solution

Answer 11

Expert Solution

Answer 12

(b)

To determine

To find:

The value of the statistic p of the given sample.

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Answer 13

(b)

To determine

To find:

The value of the statistic p of the given sample.

Answer 14

(b)

Expert Solution

Answer to Problem 22.12AYK

p− Value =0.6136

Answer 15

(b)

Expert Solution

Answer 16

(b)

Expert Solution

Answer 17

Expert Solution

Answer 18

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Answer 19

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Answer 20

(c)

To determine

To find:

The value of the chi-square χ2 of the given sample.

Answer 21

(c)

Expert Solution

Answer to Problem 22.12AYK

χ2=0.5050

Answer 22

(c)

Expert Solution

Answer 23

(c)

Expert Solution

Answer 24

Expert Solution

Answer 25

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

χ2=p^1−p^2SEχ2=0.4078−0.38740.0404χ2=0.5050

p− Value =0.6136

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Answer 26

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

Answer 27

(d)

To determine

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

Answer 28

(d)

Expert Solution

Explanation of Solution

Given:

x1=177,x2=86n1=434,n2=222

Concept used:

Formula

Standard of error

SE=p(1−p)(1n1+1n2)

Significance level

α=1−confidenceα=1−0.95

Calculation:

Parameter p= true proportion of individuals in population

The best point of estimate of p is sample proportion

X Is a random variable

H0:p1=p2H1:p1>p2

p^1=177434p^1=0.4078p^2=86222p^2=0.3874

The value of p is

p^∼N(p,pqn)

p Comes from null hypothesis and alternative hypothesis

z=p^−ppqn

Pooled proportion

p=177+86434+222p=0.4009146

Standard of error

SE=p(1−p)(1n1+1n2)SE=0.4009146(1−0.4009146)(1434+1222)SE=0.0404

z=p^1−p^2SEz=0.4078−0.38740.0404z=0.5050

For two-tail test

p− Value

=2P(z>z0)=2P(z>0.5050)=0.6136

Significance level

α=1−confidenceα=1−0.95α=0.05

Since p− Value is greater than 0.05 significance level.

So the hypothesis is fail to reject null hypothesis H0

Supplementing t-PA with endovascular therapy does not significantly increases the proportion of patients with an acute ischemic stroke

So, the regain functional independence.

Answer 29

(d)

Expert Solution

Answer 30

(d)

Expert Solution

Answer 31

Expert Solution

Answer 32

Ch. 22 - Prob. 22.1AYK Ch. 22 - Prob. 22.2AYK Ch. 22 - Prob. 22.3AYK Ch. 22 - Prob. 22.4AYK Ch. 22 - Prob. 22.5AYK Ch. 22 - Prob. 22.6AYK Ch. 22 - Prob. 22.7AYK Ch. 22 - Prob. 22.8AYK Ch. 22 - Prob. 22.9AYK Ch. 22 - Prob. 22.10AYK

The conditions are very similar of the given data.

To explain: The conditions are very similar of the given data.

Explanation of Solution

To find: The value of the statistic p of the given sample.

Answer to Problem 22.12AYK

Explanation of Solution

To find: The value of the chi-square χ2 of the given sample.

Answer to Problem 22.12AYK

Explanation of Solution

To explain: The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.

Explanation of Solution

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Chapter 22 Solutions

To explain:

The conditions are very similar of the given data.

To find:

The value of the statistic p of the given sample.

To find:

The value of the chi-square χ2 of the given sample.

To explain:

The effectiveness of supplementing t-PA with endovascular therapy in patients with an acute ischemic strokeof the given data.