Previously 5% of mothers smoked more than 21 cigarettes during their pregnancy. An obstetrician believes that the percentage of mothers who smoke 21 cigarettes or more is less than 5% today. She randomly selects 130 pregnant mothers and finds that 2 of them smoked 21 or more during pregnancy. Test the researcher's statement at the a=0.1 level of significance. The null and alternative hypothesis is H0=0.05 and H1<0.05.

What is the P-value?

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AlonsoDehner AlonsoDehner · Answer 1 · 2019-12-13T10:37:32+01:00

Answer:

p value = 0.03514

Step-by-step explanation:

Hypotheses would be

[tex]H_0: p = 0.05\\H_a: p <0.05[/tex]

(left tailed test at 10% level of significance)

Here p stands for the sample proportion of mothers smoked more than 21 cigarettes during their pregnancy.

Sample size =130

persons who smoked = 2

Sample proportion = [tex]\frac{2}{130} \\=0.0154[/tex]

Assuming H0 to be true

Std error= [tex]\sqrt{0.05*0.95/130} \\=0.01911[/tex]

p difference = -0.0346

Test statistic z=-1.81

p value = 0.03514

Since p is less than 0.10, significance level, we reject H0