A medical researcher believes that the heart rates of people who have had a hear

Question

A medical researcher believes that the heart rates of people who have had a heart attack are higher than those who have never had a heart attack. The researcher tests five people who have had a heart attack, and five who have not. There data is listed below

Heart attack: 115 125 111 128 139

No heart attack: 109 115 110 107 101

a) test the researcher's claim at the 90% confidence level

b) The researcher believes that exercise will reduce heart rates for patients who have had a heart attack. After putting the "heart attack" group above through a 6-week aerobics regimen, thier heart rates were as follows (given in the same order as above): 112 130 105 115 138. Test the researcher's claim at a 95% confidence level.

Explanation / Answer

To test the equality of population variance:

Heart attack/without exercise: x1 = 123.6 , s1 = 11.0815, s12 = 122.8, n1 =5

No heart attack: x2 = 108.4, s2 = 5.0794, s22 = 25.8, n2 =5

Heart attack/with exercise: x3 = 120, s3 = 13.5831, s32 =184.5, n3=5

H0 = The population variances are equal.

H1= The population variances are not equal.

F = s12 /s22 = 122.8/25.8 = 4.7597

F critical value at 10% significance level :

F/2,(4,4) = 6.3882

Since Fcal = 4.7597 < Ftab = 6.3882, we accept the null hypothesis and conclude that the population variances are equal.

To test the equality in population mean:

H0 =There is no significant difference between the heart rates of people who have had heart attack and who have never had a heart attack i.e., µ1 = µ2

H1 = The heart rates of people who have had a heart attack are higher than those who have never has a heart attack, i.e., µ1 > µ2

Since the population variances are equal, the test statistics is given by:

t = x1 - x2 / sp(1/n1 + 1/n2)

where sp is the pooled standard deviation.

Sp2 = (n1­-1)s12 + (n2-1)s22 / (n1 + n2 -2)

= (4*122.8)+(4*25.8)/8

=74.3

Sp = 8.6197

t = 123.6-108.4/8.6197*0.6324

= 2.7884

= 1-0.90 = 0.10

d.f = 5+5-2 = 8

t critical value = t0.10,8 = 1.397

p-value = 0.011

since, tcal = 2.7884 > ttab = 1.397 and p-value < =0.10, we reject the null hypothesis and conclude that the heart rates of people who have had a heart attack are higher than those who have never has a heart attack.

Results after exercise

Heart attack/without exercise: x1 = 123.6 , s1 = 11.0815, s12 = 122.8, n1 =5

Heart attack/with exercise: x3 = 120, s3 = 13.5831, s32 =184.5, n3=5

To test the equality in population variance:

H0 = The population variances are equal.

H1= The population variances are not equal.

F = s12 /s32 = 122.8/184.5 = 0.6655

F critical value at 5% significance level :

F/2,(4,4) = 9.6045

Since Fcal = 0.6655 < Ftab = 9.6045, we accept the null hypothesis and conclude that the population variances are equal.

To test the equality in population means:

H0 =There is no significant difference between the heart rates of people after exercise i.e., µ1 = µ3

H1 = The heart rates of people have reduced after excercise, i.e., µ1 > µ3

Since the population variances are equal, the test statistics is given by:

t = x1 - x3 / sp(1/n1 + 1/n3)

where sp is the pooled standard deviation.

Sp2 = (n1­-1)s12 + (n2-1)s32 / (n1 + n3 -2)

= (4*122.8)+(4*184.5)/8

=153.65

Sp = 12.39556

t = 123.6-120/12.3956*0.6324

= 0.459244

= 1-0.95 = 0.05

d.f = 5+5-2 = 8

t critical value = t0.05,8 = 1.860

p-value = 0.329

since, tcal = 0.4592 < ttab = 1.860 and p-value > =0.05, we accept the null hypothesis and conclude that there is no significant difference between the heart rates of people after exercise.

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